J. Semicond. > 2025, Volume 46 > Issue 1 > 011608

REVIEWS

Advances in flexible weak-light detectors based on perovskites: preparation, optimization, and application

Yaqian Yang, Ying Li, Di Chen and Guozhen Shen

+ Author Affiliations

 Corresponding author: Ying Li, liying0326@bit.edu.cn; Guozhen Shen, gzshen@bit.edu.cn

DOI: 10.1088/1674-4926/24090046CSTR: 32376.14.1674-4926.24090046

PDF

Turn off MathJax

Abstract: Photodetectors with weak-light detection capabilities play an indispensable role in various crucial fields such as health monitors, imaging, optical communication, and etc. Nevertheless, the detection of weak light signals is often severely interfered by multiple factors such as background light, dark noise and circuit noise, making it difficult to accurately capture signals. While traditional technologies like silicon photomultiplier tubes excel in sensitivity, their high cost and inherent fragility restrict their widespread application. Against this background, perovskite materials have rapidly emerged as a research focus in the field of photodetection due to their simple preparation processes and exceptional optoelectronic properties. Not only are the preparation processes of perovskite materials straightforward and cost-effective, but more importantly, they can be flexibly integrated into flexible and stretchable substrates. This characteristic significantly compensates for the shortcomings of traditional rigid electronic devices in specific application scenarios, opening up entirely new possibilities for photodetection technology. Herein, recent advances in perovskite light detection technology are reviewed. Firstly, the chemical and physical properties of perovskite materials are discussed, highlighting their remarkable advantages in weak-light detection. Subsequently, the review systematically organizes various preparation techniques of perovskite materials and analyses their advantages in different application scenarios. Meanwhile, from the two core dimensions of performance improvement and light absorption enhancement, the key strategies of improving the performance of perovskite weak-light photodetectors are explored. Finally, the review concludes with a brief summary and a discussion on the potential challenges that may arise in the further development of perovskite devices.

Key words: perovskiteweak-lightphotodetectorflexible



[1]
Hu X T, Li F Y, Song Y L. Wearable power source: A newfangled feasibility for perovskite photovoltaics. ACS Energy Lett, 2019, 4, 1065 doi: 10.1021/acsenergylett.9b00503
[2]
Song Q, Wang Y, Vogelbacher F, et al. Moiré perovskite photodetector toward high sensitive digital polarization imaging. Adv Energy Mater, 2021, 11, 2100742 doi: 10.1002/aenm.202100742
[3]
Zhang X N, Liu X Y, Sun B, et al. Broadening the spectral response of perovskite photodetector to the solar-blind ultraviolet region through phosphor encapsulation. ACS Appl Mater Interfaces, 2021, 13, 44509 doi: 10.1021/acsami.1c09719
[4]
Wang H, Kim D H. Perovskite-based photodetectors: Materials and devices. Chem Soc Rev, 2017, 46, 5204 doi: 10.1039/C6CS00896H
[5]
Rogalski A. A look at the future of perovskite detectors. Appl Phys Lett, 2024, 125, 090501 doi: 10.1063/5.0228001
[6]
Seo J, Lee J H, Pak J, et al. Ultrasensitive photodetection in MoS2 avalanche phototransistors. Adv Sci, 2021, 8, e2102437 doi: 10.1002/advs.202102437
[7]
Wang H L, Guo J X, Miao J S, et al. Emerging single-photon detectors based on low-dimensional materials. Small, 2022, 18, e2103963 doi: 10.1002/smll.202103963
[8]
Liu M Z, Johnston M B, Snaith H J. Efficient planar heterojunction perovskite solar cells by vapour deposition. Nature, 2013, 501, 395 doi: 10.1038/nature12509
[9]
Snaith H J. Perovskites: The emergence of a new era for low-cost, high-efficiency solar cells. J Phys Chem Lett, 2013, 4, 3623 doi: 10.1021/jz4020162
[10]
Lee M M, Teuscher J, Miyasaka T, et al. Efficient hybrid solar cells based on meso-superstructured organometal halide perovskites. Science, 2012, 338, 643 doi: 10.1126/science.1228604
[11]
Fu Y, Yuan M, Zhao Y J, et al. Gradient bandgap-tunable perovskite microwire arrays toward flexible color-cognitive devices. Adv Funct Materials, 2023, 33, 2214094 doi: 10.1002/adfm.202214094
[12]
Liu Z R, Zhang Z G, Zhang X N, et al. Achieving high responsivity and detectivity in a quantum-dot-in-perovskite photodetector. Nano Lett, 2023, 23, 1181 doi: 10.1021/acs.nanolett.2c04144
[13]
Han T H, Tan S, Xue J J, et al. Interface and defect engineering for metal halide perovskite optoelectronic devices. Adv Mater, 2019, 31, e1803515 doi: 10.1002/adma.201803515
[14]
Li M D, Cao C S, Liu W B, et al. Orientation regulation of one-dimensional CsCu2I3 perovskites for visible-blind ultraviolet photodetectors. J Phys Chem Lett, 2022, 13, 6462 doi: 10.1021/acs.jpclett.2c01715
[15]
Zou C, Liu Q, Chen K, et al. A high-performance polarization-sensitive and stable self-powered UV photodetector based on a dendritic crystal lead-free metal-halide CsCu2I3/GaN heterostructure. Mater Horiz, 2022, 9, 1479 doi: 10.1039/D1MH02073K
[16]
Treglia A, Ambrosio F, Martani S, et al. Effect of electronic doping and traps on carrier dynamics in tin halide perovskites. Mater Horiz, 2022, 9, 1763 doi: 10.1039/D2MH00008C
[17]
Shi S W, Li Y F, Li X Y, et al. Advancements in all-solid-state hybrid solar cells based on organometal halide perovskites. Mater Horiz, 2015, 2, 378 doi: 10.1039/C4MH00236A
[18]
Dou L T, Yang Y M, You J B, et al. Solution-processed hybrid perovskite photodetectors with high detectivity. Nat Commun, 2014, 5, 5404 doi: 10.1038/ncomms6404
[19]
Jun T, Sim K, Iimura S, et al. Lead-free highly efficient blue-emitting Cs3Cu2I5 with 0D electronic structure. Adv Mater, 2018, 30, 1804547 doi: 10.1002/adma.201804547
[20]
Feng X P, He Y H, Qu W, et al. Spray-coated perovskite hemispherical photodetector featuring narrow-band and wide-angle imaging. Nat Commun, 2022, 13, 6106 doi: 10.1038/s41467-022-33934-1
[21]
Lv J N, Lu X Y, Li X, et al. Epitaxial growth of lead-free 2D Cs3Cu2I5 perovskites for high-performance UV photodetectors. Small, 2022, 18, 2201715 doi: 10.1002/smll.202201715
[22]
Liu J Q, Gong J D, Wei H H, et al. A bioinspired flexible neuromuscular system based thermal-annealing-free perovskite with passivation. Nat Commun, 2022, 13, 7427 doi: 10.1038/s41467-022-35092-w
[23]
Tian X Y, Wang R N, Xu Y L, et al. Triangular micro-grating via femtosecond laser direct writing toward high-performance polarization-sensitive perovskite photodetectors. Adv Optical Mater, 2022, 10, 2200856 doi: 10.1002/adom.202200856
[24]
Yadav S N S, Chen P L, Liu C H, et al. Plasmonic metasurface integrated black phosphorus-based mid-infrared photodetector with high responsivity and speed. Adv Mater Interfaces, 2023, 10, 2202403 doi: 10.1002/admi.202202403
[25]
Tang Y J, Jin P, Wang Y, et al. Enabling low-drift flexible perovskite photodetectors by electrical modulation for wearable health monitoring and weak light imaging. Nat Commun, 2023, 14, 4961 doi: 10.1038/s41467-023-40711-1
[26]
Gu L L, Poddar S, Lin Y J, et al. A biomimetic eye with a hemispherical perovskite nanowire array retina. Nature, 2020, 581, 278 doi: 10.1038/s41586-020-2285-x
[27]
Green M A, Ho-Baillie A, Snaith H J. The emergence of perovskite solar cells. Nature Photon, 2014, 8, 506 doi: 10.1038/nphoton.2014.134
[28]
Chang S H, Koo J H, Yoo J, et al. Flexible and stretchable light-emitting diodes and photodetectors for human-centric optoelectronics. Chem Rev, 2024, 124, 768 doi: 10.1021/acs.chemrev.3c00548
[29]
Liang W Q, Li Y, Ma J L, et al. A solution-processed ternary copper halide thin films for air-stable and deep-ultraviolet-sensitive photodetector. Nanoscale, 2020, 12, 17213 doi: 10.1039/D0NR03630G
[30]
Qiao B S, Wang S Y, Zhang Z H, et al. Photosensitive dielectric 2D perovskite based photodetector for dual wavelength demultiplexing. Adv Mater, 2023, 35, 2300632 doi: 10.1002/adma.202300632
[31]
Noel N K, Wenger B, Habisreutinger S N, et al. Utilizing nonpolar organic solvents for the deposition of metal-halide perovskite films and the realization of organic semiconductor/perovskite composite photovoltaics. ACS Energy Lett, 2022, 7, 1246 doi: 10.1021/acsenergylett.2c00120
[32]
Wang M, Sun H X, Cao F R, et al. Moisture-triggered self-healing flexible perovskite photodetectors with excellent mechanical stability. Adv Mater, 2021, 33, 2100625 doi: 10.1002/adma.202100625
[33]
Vuong V H, Pammi S V N, Pasupuleti K S, et al. Engineering chemical vapor deposition for lead-free perovskite-inspired MA3Bi2I9 self-powered photodetectors with high performance and stability. Adv Optical Mater, 2021, 9, 2100192 doi: 10.1002/adom.202100192
[34]
Tian C C, Wang F, Wang Y P, et al. Chemical vapor deposition method grown all-inorganic perovskite microcrystals for self-powered photodetectors. ACS Appl Mater Interfaces, 2019, 11, 15804 doi: 10.1021/acsami.9b03551
[35]
Fang H J, Li J W, Ding J, et al. An origami perovskite photodetector with spatial recognition ability. ACS Appl Mater Interfaces, 2017, 9, 10921 doi: 10.1021/acsami.7b02213
[36]
Kong W C, Zhao C, Huang T, et al. Accurate adjusting the lattice strain of triple-cation and mixed-halide perovskites for high-performance photodetector. ACS Appl Mater Interfaces, 2022, 14, 28154 doi: 10.1021/acsami.2c02427
[37]
Li S X, Xu X L, Yang Y, et al. Highly deformable high-performance paper-based perovskite photodetector with improved stability. ACS Appl Mater Interfaces, 2021, 13, 31919 doi: 10.1021/acsami.1c05828
[38]
Kim J H, Stolte M, Würthner F. Wavelength and polarization sensitive synaptic phototransistor based on organic n-type semiconductor/supramolecular J-aggregate heterostructure. ACS Nano, 2022, 16, 19523 doi: 10.1021/acsnano.2c09747
[39]
Lin D Y, Liu J B, Haroldson R, et al. High-performance directly patterned nanograting perovskite photodetector with interdigitated electrodes. Adv Optical Mater, 2022, 10, 2201516 doi: 10.1002/adom.202201516
[40]
Wang X Z, Li J, Chen Y F, et al. Spray-coating thick films of all-inorganic halide perovskites for filterless narrowband photodetectors. ACS Appl Mater Interfaces, 2022, 14, 24583 doi: 10.1021/acsami.2c03585
[41]
Thornber T, Game O S, Cassella E J, et al. Nonplanar spray-coated perovskite solar cells. ACS Appl Mater Interfaces, 2022, 14, 37587 doi: 10.1021/acsami.2c05085
[42]
Wang S H, Gu Z K, Zhao R D, et al. A general method for growth of perovskite single-crystal arrays for high performance photodetectors. Nano Res, 2022, 15, 6568 doi: 10.1007/s12274-022-4205-x
[43]
Vescio G, Sanchez-Diaz J, Frieiro J L, et al. 2D PEA2SnI4 inkjet-printed halide perovskite LEDs on rigid and flexible substrates. ACS Energy Lett, 2022, 7, 3653 doi: 10.1021/acsenergylett.2c01773
[44]
Schröder V R F, Fratzscher N, Zorn Morales N, et al. Bicolour, large area, inkjet-printed metal halide perovskite light emitting diodes. Mater Horiz, 2024, 11, 1989 doi: 10.1039/D3MH02025H
[45]
Zuo C T, Zhang L X, Pan X Y, et al. Perovskite films with gradient bandgap for self-powered multiband photodetectors and spectrometers. Nano Res, 2023, 16, 10256 doi: 10.1007/s12274-023-5714-y
[46]
Liu Y J, Gao Y X, Zhi J Y, et al. All-inorganic lead-free NiOx/Cs3Bi2Br9 perovskite heterojunction photodetectors for ultraviolet multispectral imaging. Nano Res, 2022, 15, 1094 doi: 10.1007/s12274-021-3608-4
[47]
Wang Q L, Zhang G N, Zhang H Y, et al. High-resolution, flexible, and full-color perovskite image photodetector via electrohydrodynamic printing of ionic-liquid-based ink. Adv Funct Mater, 2021, 31, 2100857 doi: 10.1002/adfm.202100857
[48]
Li G H, Che T, Ji X Q, et al. Record-low-threshold lasers based on atomically smooth triangular nanoplatelet perovskite. Adv Funct Mater, 2019, 29, 1805553 doi: 10.1002/adfm.201805553
[49]
Zhou H, Yuan S P, Wang X X, et al. Vapor growth and tunable lasing of band gap engineered cesium lead halide perovskite micro/nanorods with triangular cross section. ACS Nano, 2017, 11, 1189 doi: 10.1021/acsnano.6b07374
[50]
Du W N, Zhang S, Wu Z Y, et al. Unveiling lasing mechanism in CsPbBr3 microsphere cavities. Nanoscale, 2019, 11, 3145 doi: 10.1039/C8NR09634A
[51]
Li Y, Shi Z F, Wang L T, et al. Solution-processed one-dimensional CsCu2I3 nanowires for polarization-sensitive and flexible ultraviolet photodetectors. Mater Horiz, 2020, 7, 1613 doi: 10.1039/D0MH00250J
[52]
Chen Y C, Li Y, Niu S F, et al. High temperature resistant solar-blind ultraviolet photosensor for neuromorphic computing and cryptography. Adv Funct Materials, 2024, 34, 2315383 doi: 10.1002/adfm.202315383
[53]
Yang Y Q, Li Y, Chen D, et al. Zero-bias Bi-based perovskite image sensor arrays with direct laser-scribing process. J Mater Chem C, 2023, 11, 13539 doi: 10.1039/D3TC02180G
[54]
Gong X, Tong M H, Xia Y J, et al. High-detectivity polymer photodetectors with spectral response from 300 nm to 1450 nm. Science, 2009, 325, 1665 doi: 10.1126/science.1176706
[55]
Xie C, Liu C K, Loi H L, et al. Perovskite-based phototransistors and hybrid photodetectors. Adv Funct Materials, 2020, 30, 1903907 doi: 10.1002/adfm.201903907
[56]
Chen Y C, Niu S F, Li Y, et al. Flexible single microwire X-ray detector with ultrahigh sensitivity for portable radiation detection system. Adv Mater, 2024, 2404656 doi: 10.1002/adma.202404656
[57]
Bin Kim D, Han J, Jung Y S, et al. Origin of the anisotropic-strain-driven photoresponse enhancement in inorganic halide-based self-powered flexible photodetectors. Mater Horiz, 2022, 9, 1207 doi: 10.1039/D1MH02055B
[58]
Wang S L, Frisch S, Zhang H, et al. Grain engineering for improved charge carrier transport in two-dimensional lead-free perovskite field-effect transistors. Mater Horiz, 2022, 9, 2633 doi: 10.1039/D2MH00632D
[59]
Guan X, Lu J X, Wei Q, et al. Suppressing disproportionation decomposition in Sn-based perovskite light-emitting diodes. ACS Energy Lett, 2023, 8, 1597 doi: 10.1021/acsenergylett.2c02822
[60]
Wang C H, Cui S Q, Ju Y Y, et al. Color-stable two-dimensional tin-based perovskite light-emitting diodes: Passivation effects of diphenylphosphine oxide derivatives. Adv Funct Mater, 2023, 33, 2301304 doi: 10.1002/adfm.202301304
[61]
Chao I H, Yang Y T, Yu M H, et al. Performance enhancement of lead-free 2D tin halide perovskite transistors by surface passivation and its impact on non-volatile photomemory characteristics. Small, 2023, 19, 2207734 doi: 10.1002/smll.202207734
[62]
Wu D, Li W H, Liu H C, et al. Universal strategy for improving perovskite photodiode performance: Interfacial built-in electric field manipulated by unintentional doping. Adv Sci, 2021, 8, 2101729 doi: 10.1002/advs.202101729
[63]
Tan S, Huang T Y, Yavuz I, et al. Surface reconstruction of halide perovskites during post-treatment. J Am Chem Soc, 2021, 143, 6781 doi: 10.1021/jacs.1c00757
[64]
Li Z W, Liu Y J, He J Z, et al. Cs2AgBiBr6-based heterojunction photodetector for weak-light imaging application. Surf Interfaces, 2022, 29, 101705 doi: 10.1016/j.surfin.2021.101705
[65]
Aung S K K, Vijayan A, Boschloo G, et al. Enhanced thermal stability of low-temperature processed carbon-based perovskite solar cells by a combined antisolvent/polymer deposition method. Energy Technol, 2022, 10, 2200177 doi: 10.1002/ente.202200177
[66]
Yang F, Kapil G, Zhang P T, et al. Dependence of acetate-based antisolvents for high humidity fabrication of CH3NH3PbI3 perovskite devices in ambient atmosphere. ACS Appl Mater Interfaces, 2018, 10, 16482 doi: 10.1021/acsami.8b02554
[67]
Zeng F J, Guo Y Y, Hu W, et al. Green anti-solvent assisted crystallization strategy for air-stable uniform Cs3Cu2I5 perovskite films with highly efficient blue photoluminescence. J Lumin, 2020, 223, 117178 doi: 10.1016/j.jlumin.2020.117178
[68]
Zhang Z Y, Sun L, Wang G P. Lateral perovskite single-crystal capacitors for self-powered photodetection. Adv Electron Mater, 2023, 9, 2201318 doi: 10.1002/aelm.202201318
[69]
Huang J M, Zou S W, Lin J, et al. Ultrathin lead-free double perovskite cesium silver bismuth bromide nanosheets. Nano Res, 2021, 14, 4079 doi: 10.1007/s12274-021-3343-x
[70]
Li S X, Xu Y S, Li C L, et al. Perovskite single-crystal microwire-array photodetectors with performance stability beyond 1 year. Adv Mater, 2020, 32, 2001998 doi: 10.1002/adma.202001998
[71]
Li S X, Xia H, Wang L, et al. Self-powered and flexible photodetector with high polarization sensitivity based on MAPbBr3–MAPbI3 microwire lateral heterojunction. Adv Funct Mater, 2022, 32, 2206999 doi: 10.1002/adfm.202206999
[72]
Ma Z Z, Shi Z F, Wang L T, et al. Water-induced fluorescence enhancement of lead-free cesium bismuth halide quantum dots by 130% for stable white light-emitting devices. Nanoscale, 2020, 12, 3637 doi: 10.1039/C9NR10075J
[73]
Wu J B, Zhang X Y, Wang Z Y, et al. Near-infrared polarization-sensitive photodetectionviainterfacial symmetry engineering of an Si/MAPbI3 heterostructural single crystal. Mater Horiz, 2023, 10, 952 doi: 10.1039/D2MH01287A
[74]
Song J Z, Xu L M, Li J H, et al. Monolayer and few-layer all-inorganic perovskites as a new family of two-dimensional semiconductors for printable optoelectronic devices. Adv Mater, 2016, 28, 4861 doi: 10.1002/adma.201600225
[75]
Li S X, Xia H, Sun X C, et al. Curved photodetectors based on perovskite microwire arrays via in situ conformal nanoimprinting. Adv Funct Mater, 2022, 32, 2202277 doi: 10.1002/adfm.202202277
[76]
Li Y F, Feng J, Sun H B. Perovskite quantum dots for light-emitting devices. Nanoscale, 2019, 11, 19119 doi: 10.1039/C9NR06191F
[77]
Zhang H Y, Wang B L, Niu Z J, et al. Ultrasmall water-stable CsPbBr3 quantum dots with high intensity blue emission enabled by zeolite confinement engineering. Mater Horiz, 2023, 10, 5079 doi: 10.1039/D3MH01092A
[78]
Zhou X Y, Wang C, Luo J L, et al. High-performance self-powered UV photodetector based on CuI/CsCu2I3/GaN heterojunction. Chem Eng J, 2022, 450, 136364 doi: 10.1016/j.cej.2022.136364
[79]
Cao F R, Meng L X, Wang M, et al. Gradient energy band driven high-performance self-powered perovskite/CdS photodetector. Adv Mater, 2019, 31, 1806725 doi: 10.1002/adma.201806725
[80]
Qiu X C, Xia J N, Liu Y, et al. Ambient-stable 2D dion–jacobson phase tin halide perovskite field-effect transistors with mobility over 1.6 cm2 V−1 s−1. Adv Mater, 2023, 35, 2305648 doi: 10.1002/adma.202305648
[81]
Chen J X, Liu X Y, Li Z Q, et al. Work-function-tunable MXenes electrodes to optimize p-CsCu2I3/n-Ca2Nb3-xTaxO10 junction photodetectors for image sensing and logic electronics. Adv Funct Mater, 2022, 32, 2201066 doi: 10.1002/adfm.202201066
[82]
Guo L T, Zhang K, Tao M Q, et al. Bio-inspired micro area concentrated array assisted perovskite photodetector toward weak light imaging. J Mater Chem C, 2023, 11, 8045 doi: 10.1039/D2TC03760B
[83]
Li S X, Xia H, Liu T Y, et al. In situ encapsulated moiré perovskite for stable photodetectors with ultrahigh polarization sensitivity. Adv Mater, 2023, 35, 2207771 doi: 10.1002/adma.202207771
[84]
Wang B, Zou Y T, Lu H Y, et al. Boosting perovskite photodetector performance in NIR using plasmonic bowtie nanoantenna arrays. Small, 2020, 16, 2001417 doi: 10.1002/smll.202001417
[85]
Lee Y H, Lee S H, Won Y, et al. Boosting the performance of flexible perovskite photodetectors using hierarchical plasmonic nanostructures. Small Struct, 2024, 5, 2300546 doi: 10.1002/sstr.202300546
[86]
Xiao X, Bao C X, Fang Y J, et al. Argon plasma treatment to tune perovskite surface composition for high efficiency solar cells and fast photodetectors. Adv Mater, 2018, 30, 1705176 doi: 10.1002/adma.201705176
[87]
Li M Y, Shen K, Xu H, et al. Enhanced spatial light confinement of all inorganic perovskite photodetectors based on hybrid plasmonic nanostructures. Small, 2020, 16, 2004234 doi: 10.1002/smll.202004234
[88]
Dcosta J V, Ochoa D, Sanaur S. Recent progress in flexible and wearable all organic photoplethysmography sensors for SpO2 monitoring. Adv Sci, 2023, 10, 2302752 doi: 10.1002/advs.202302752
[89]
Liu F C, Liu K, Rafique S, et al. Highly efficient and stable self-powered mixed tin-lead perovskite photodetector used in remote wearable health monitoring technology. Adv Sci, 2023, 10, 2205879 doi: 10.1002/advs.202205879
[90]
Wu W T, Li L L, Li Z X, et al. Extensible integrated system for real-time monitoring of cardiovascular physiological signals and limb health. Adv Mater, 2023, 35, 2304596 doi: 10.1002/adma.202304596
[91]
Xu Z S, Pan X J, Lu H, et al. Surface energy-assisted patterning of vapor deposited all-inorganic perovskite arrays for wearable optoelectronics. Adv Sci, 2024, 11, 2402635 doi: 10.1002/advs.202402635
[92]
Zhou Y, Qiu X, Wan Z A, et al. Halide-exchanged perovskite photodetectors for wearable visible-blind ultraviolet monitoring. Nano Energy, 2022, 100, 107516 doi: 10.1016/j.nanoen.2022.107516
[93]
Yang Y Q, Li Y, Chen D, et al. Multicolor vision perception of flexible optoelectronic synapse with high sensitivity for skin sunburn warning. Mater Horiz, 2024, 11, 1934 doi: 10.1039/D3MH02154H
[94]
Liu T H, Wang J F, Liu Y S, et al. Cyano-coordinated tin halide perovskites for wearable health monitoring and weak light imaging. Adv Mater, 2024, 36, 2400090 doi: 10.1002/adma.202400090
[95]
Leung S F, Ho K T, Kung P K, et al. A self-powered and flexible organometallic halide perovskite photodetector with very high detectivity. Adv Mater, 2018, 30, 1704611 doi: 10.1002/adma.201704611
[96]
Lu Q C, Zhang Y F, Yang G L, et al. Large-scale, uniform-patterned CsCu2I3 films for flexible solar-blind photodetectors array with ultraweak light sensing. Small, 2023, 19, 2300364 doi: 10.1002/smll.202300364
[97]
Jiang Y L, Li G, Wang J J. Photoacoustic compound fire alarm system for detecting particles and carbon monoxide in smoke. Fire Technol, 2016, 52, 1255 doi: 10.1007/s10694-015-0542-6
[98]
Martin G, Boehmer H, Olenick S M. Thermally-induced failure of smoke alarms. Fire Technol, 2020, 56, 673 doi: 10.1007/s10694-019-00898-6
[99]
Zhang Z X, Xu C H, Zhu C Y, et al. Fabrication of MAPbI3 perovskite/Si heterojunction photodetector arrays for image sensing application. Sens Actuat A Phys, 2021, 332, 113176 doi: 10.1016/j.sna.2021.113176
[100]
Wang B, Zhang C, Zeng B, et al. Fabrication of addressable perovskite film arrays for high-performance photodetection and real-time image sensing application. J Phys Chem Lett, 2021, 12, 2930 doi: 10.1021/acs.jpclett.1c00521
[101]
Wu D J, Xu Y C, Zhou H, et al. Ultrasensitive, flexible perovskite nanowire photodetectors with long-term stability exceeding 5000 H. InfoMat, 2022, 4, e12320 doi: 10.1002/inf2.12320
[102]
Zhang Z H, Zheng P X, Yan S S, et al. Ultrasensitive perovskite photodetector for filter-free color single-pixel imaging. Adv Optical Mater, 2023, 11, 2201847 doi: 10.1002/adom.202201847
[103]
Dong K L, Zhou H, Gao Z, et al. 2D perovskite single-crystalline photodetector with large linear dynamic range for UV weak-light imaging. Adv Funct Mater, 2024, 34, 2306941 doi: 10.1002/adfm.202306941
[104]
Li C, Li J X, Li C Y, et al. Sensitive photodetector arrays based on patterned CH3NH3PbBr3 single crystal microplate for image sensing application. Adv Optical Mater, 2021, 9, 2100371 doi: 10.1002/adom.202100371
[105]
Zhan Z Y, Lin D X, Cai J T, et al. A perovskite photodetector crossbar array by vapor deposition for dynamic imaging. Adv Mater, 2022, 34, 2207106 doi: 10.1002/adma.202207106
[106]
Yeo Z Y, Ling Z P, Ho J W, et al. Status review and future perspectives on mitigating light-induced degradation on silicon-based solar cells. Renew Sustain Energy Rev, 2022, 159, 112223 doi: 10.1016/j.rser.2022.112223
[107]
Wu W Q, Han X, Li J, et al. Ultrathin and conformable lead halide perovskite photodetector arrays for potential application in retina-like vision sensing. Adv Mater, 2021, 33, 2006006 doi: 10.1002/adma.202006006
[108]
Gunasekaran R K, Chinnadurai D, Selvaraj A R, et al. Revealing the self-degradation mechanisms in methylammonium lead iodide perovskites in dark and vacuum. Chemphyschem, 2018, 19, 1507 doi: 10.1002/cphc.201800002
[109]
Nguyen T M H, Lee S K, Kim S, et al. Practical demonstration of deep-ultraviolet detection with wearable and self-powered halide perovskite-based photodetector. ACS Appl Mater Interfaces, 2021, 13, 57609 doi: 10.1021/acsami.1c18099
[110]
Wang M, Tian W, Cao F R, et al. Flexible and self-powered lateral photodetector based on inorganic perovskite CsPbI3–CsPbBr3 heterojunction nanowire array. Adv Funct Mater, 2020, 30, 1909771 doi: 10.1002/adfm.201909771
[111]
Bao C X, Yang J, Bai S, et al. High performance and stable all-inorganic metal halide perovskite-based photodetectors for optical communication applications. Adv Mater, 2018, 30, 1803422 doi: 10.1002/adma.201803422
[112]
Zhu Z H, Deng W, Li W, et al. Antisolvent-induced fastly grown all-inorganic perovskite CsPbCl3 microcrystal films for high-sensitive UV photodetectors. Adv Mater Interfaces, 2021, 8, 2001812 doi: 10.1002/admi.202001812
[113]
Naikaew A, Kumnorkaew P, Supasai T, et al. Enhancing high humidity stability of quasi-2D perovskite thin films through mixed cation doping and solvent engineering. ChemNanoMat, 2019, 5, 1280 doi: 10.1002/cnma.201900189
[114]
Naikaew A, Kumnorkaew P, Wattanathana W, et al. Investigation of double-layered Pb-Sn perovskite absorbers: Formation, structure, band alignment, and stability. J Phys Chem C, 2022, 126, 1623 doi: 10.1021/acs.jpcc.1c08811
[115]
Qiu J, Xia Y D, Zheng Y T, et al. 2D intermediate suppression for efficient ruddlesden–popper (RP) phase lead-free perovskite solar cells. ACS Energy Lett, 2019, 4, 1513 doi: 10.1021/acsenergylett.9b00954
Fig. 1.  (Color online) The schematic diagram of the topics in this review, including the preparation methods, performance optimization, and device applications of perovskite PDs. Preparation methods. Reprinted with permission from Ref. [20]. Copyright 2022 Springer Nature. Reprinted with permission from Ref. [21]. Copyright 2022 Wiley-VCH. Reprinted with permission from Ref. [22]. Copyright 2022 Springer Nature. Reprinted with permission from Ref. [23]. Copyright 2022 Wiley-VCH. Performance optimization. Reprinted with permission from Ref. [24]. Copyright 2023 Wiley-VCH. Device applications. Reprinted with permission from Ref. [25]. Copyright 2023 Springer Nature. Reprinted with permission from Ref. [3]. Copyright 2021 American Chemical Society. Reprinted with permission from Ref. [26]. Copyright 2020 Springer Nature. Perovskite crystal structure. Reprinted with permission from Ref. [27]. Copyright 2014 Springer Nature.

Fig. 2.  (Color online) Primary structures of PDs and their working principles. (a) Photodiodes. (b) Photoconductors. (c) Phototransistors. Reprinted with permission from Ref. [28]. Copyright 2024 American Chemical Society.

Fig. 3.  (Color online) (a) Schematic illustration of the fabrication processes of FAPbI3 film. Reprinted with permission from Ref. [23]. Copyright 2022 Wiley-VCH. (b) Schematic diagram of the CVD setup for the synthesis of Cs3Cu2I5 nanosheets. Reprinted with permission from Ref. [21]. Copyright 2022 Wiley-VCH. (c) Schematic diagram of 2T-CVD processes. Reprinted with permission from Ref. [33]. Copyright 2021 Wiley-VCH. (d) Illustration of the formation process for the composition-graded films. Reprinted with permission from Ref. [45]. Copyright 2023 Springer Nature. (e) Preparation of spin-coating the Cs3Bi2Br9 films. Reprinted with permission from Ref. [46]. Copyright 2021 Springer Nature. (f) Illustration of the home-made spray-coating setup. Reprinted with permission from Ref. [40]. Copyright 2022 American Chemical Society. (g) Schematic illustration of the EHD printing fabrication process and perovskite transformation from MAPbX3 ink to polycrystalline film. Reprinted with permission from Ref. [47]. Copyright 2021 Wiley-VCH.

Fig. 4.  (Color online) (a) and (b) Top-view SEM image of the Cs3Cu2I5 perovskite films without/with MA (Inset: size distribution of the Cs3Cu2I5 perovskite films without/with MA). Reprinted with permission from Ref. [67]. Copyright 2020 Elsevier B.V. (c) Photograph for growing: (ⅰ) MSCs and (ⅱ) finished products under room light. Reprinted with permission from Ref. [68]. Copyright 2023 Wiley-VCH. (d) Representative TEM images of Cs2AgBiBr6 nanosheets with different magnification. Reprinted with permission from Ref. [69]. Copyright 2021 Springer Nature. (e) Characterizations of MAPbBr3 SCMWAs. Fluorescence images of straight (ⅰ) and curved (ⅱ) MAPbBr3 SCMWAs excited by a 405 nm laser. SEM images of straight (ⅲ) and curved (ⅳ) MAPbBr3 SCMWAs. Reprinted with permission from Ref. [70]. Copyright 2020 Wiley-VCH. (f) SEM images of the heterojunction structure. (g) Pb, I, Br elements distribution pattern of the heterojunction. Reprinted with permission from Ref. [71]. Copyright 2022 Wiley-VCH. (h) High-resolution TEM images of the Cs3Bi2Br9 QDs encapsulated in a BiOBr matrix. Reprinted with permission from Ref. [72]. Copyright 2020 The Royal Society of Chemistry.

Fig. 5.  (Color online) (a) Energy band alignments of CuI, CsCu2I3, and GaN. (b) Schematic energy band diagram of CuI/CsCu2I3/GaN heterojunction under light illumination. Reprinted with permission from Ref. [78]. Copyright 2022 Elsevier. (c) Device structure of the hybrid perovskite PD. (d) Energy diagram of the perovskite PD under a slight reverse bias. (e) Current density−voltage curves of PDs with and without the hole-blocking layer. PD1, without hole-blocking layers; PD2, with BCP as the hole-blocking layer; and PD3, with PFN as the hole-blocking layer. Reprinted with permission from Ref. [18]. Copyright 2014 Springer Nature. (f) Schematic illustration of the fabrication process of the gradient-O CdS/perovskite PDs. (g) The schematic representation of gradient energy levels, and carrier transport at the gradient-O CdS/perovskite interface. Reprinted with permission from Ref. [79]. Copyright 2019 Wiley-VCH. (h) The structure diagram of BDASnI4 BGTC FET and the chemical structure of ASIs. Reprinted with permission from Ref. [80]. Copyright 2023 Wiley-VCH. (i) Energy band diagram of Au/p-CsCu2I3/n-Ca2Nb3−xTaxO10/MXenes device. WF: work function. Reprinted with permission from Ref. [81]. Copyright 2022 Wiley-VCH.

Fig. 6.  (Color online) (a) SEM image of the 600 nm-perovskite film. (b) Magnified SEM image of the film surface. Reprinted with permission from Ref. [82]. Copyright 2022 The Royal Society of Chemistry. (c) Magnified SEM images of the moiré perovskite at different positions. Reprinted with permission from Ref. [83]. Copyright 2022 Wiley-VCH. (d) Designed geometrical parameters of BNA arrays with MIM configuration. (e) and (f) The E-field distribution (|E|2/|E0|2) under 775 nm (LSPR mode) in x−y and x−z plane. Reprinted with permission from Ref. [84]. Copyright 2020 Wiley-VCH. (g) Schematic diagram of fabrication process of CN-patterned PDMS stamp. (h) Electric field of CN for x-(top), and y-(bottom) polarized light (670 nm). Reprinted with permission from Ref. [85]. Copyright 2024 Wiley-VCH.

Fig. 7.  (Color online) (a) The transmission mode oximetry. (b) The reflection mode oximetry. Reprinted with permission from Ref. [88]. Copyright 2023 Wiley-VCH. (c) Schematic diagram of the working principle of the PPG test in transmission mode. Volumetric changes in the blood vessels modulate the transmitted light intensity. (d) Photograph of the FPD attached on finger pulp as PPG sensor for recording blood pulse signal. (e)−(g) Comparison of PPG signals detected by the FPD under different incident light intensities (72, 4.6, and 2 mW·cm−2) when the CE was applied with 0 and 0.1 V. The calculated blood pulse frequency was 67 beats per minute. a.u. arbitrary units. Reprinted with permission from Ref. [25]. Copyright 2023 Springer Nature. (h) Schematic illustration of the application of flexible mixed Sn−Pb (FMSP) PPD in wearable remote health monitoring (TX: transmitter RX: receiver). (i) and (j) The pulse signal measured from the FMSP PPD (transmitted pulse signal) and the received pulse signal by optical communication at rest and after-run conditions. Reprinted with permission from Ref. [89]. Copyright 2022 Wiley-VCH. (k) The detailed structure diagram and physical schematic of the flexible PPG signal sensor (inset: Left: flexible perovskite PD; right: red led used as light source). Scale bar: 0.5 cm. The photoplethysmography (PPG) signals of the fingers are under different swelling degrees. (l) Schematic diagram of varied working modes of PPG signal sensor. (m) The detailed waveforms of PPG signals corresponding to fingers with different swelling degrees. (n) The basic waveforms of PPG signals corresponding to fingers with different swelling degrees under 635 and 532 nm (the degree of swelling increases from left to right). (o) Calculated blood-oxygen saturation values according to the PPG signals under 635 and 532 nm. Reprinted with permission from Ref. [90]. Copyright 2023 Wiley-VCH. (p) Schematic illustration of the perovskite photodetector-based PPG sensor. The inset is the working principle diagram of the PPG sensor and the schematic diagram of signal components received by the photodetector. Photograph of the PPG sensor in the nonworking (top) and working (bottom) conditions. (q) PPG signals under different illumination intensities of 8.16, 2, 0.423, and 0.055 mW·cm−2, respectively. Reprinted with permission from Ref. [91]. Copyright 2024 Wiley-VCH. (r) Schematic illustration showing the UV monitor works in daily life. The data can be transmitted to the user’s mobile phone and uploaded to the cloud. (s) Photograph of a wearable flexible UV monitor. Reprinted with permission from Ref. [92]. Copyright 2022 Elsevier. (t) Diagram of the brief working principle of UV monitoring. The data can be transmitted to the user’s mobile phone via Bluetooth terminal for real-time display. (u) Photograph of the designed flexible circuit board on arm (the inset shows the flexible device). Reprinted with permission from Ref. [93]. Copyright 2024 Royal Society of Chemistry.

Fig. 8.  (Color online) (a) Schematic illustration of the folding steps to create a cubic PD from a 2D pattern. (b) A Cartesian coordinate system is built based on the cubic PD. (c) The signals (normalized current) of pixels on each face when the cubic PD was illuminated along different directions. Reprinted with permission from Ref. [35]. Copyright 2017 American Chemical Society. (d) The ΔV and PDCR of the perovskite PD under sunny, cloudy, and room lighting conditions. The sunny and cloudy days occurred at N 22°18′30″ and E 39°06′20″ at 11:00 on March 16th, 2017 and 15:00 on March 21st, 2017, respectively. Reprinted with permission from Ref. [95]. Copyright 2018 Wiley-VCH. (e) (ⅰ) Digital image of curved solar-blind PDs array attached on the hemisphere support. Inset is the corresponding 2D plane diagram. (ⅱ) Current variation of the pixels at different positions with the flame (220 µW·cm−2) close to the A5 pixel. Current distribution of the curved solar-blind PDs array under single flame (f) and multi-flame (g) irradiation. Reprinted with permission from Ref. [96]. Copyright 2023 Wiley-VCH.

Fig. 9.  (Color online) (a) The schematic design of SnO2/CABB PD based transmittance imaging system. (b) and (c) Imaging results under a light intensity of 0.5 and 5 μW·cm−2, respectively (the scale bar is 0.4 cm). (d) SNRs of the imaging results extracted from (b) and (c). Reprinted with permission from Ref. [64]. Copyright 2021 Elsevier. (d) Schematic diagram of the diffuse reflection imaging system. The diffuse reflection images of "butterfly outline" detected by (e) commercial silicon photodiode S2386 and (f) our flexible PD. Reprinted with permission from Ref. [101]. Copyright 2022 Wiley-VCH. Reflective single-pixel imaging based on the MAPbBr3 microwire arrays (MWAs) single-pixel detector (SPD). (g) Schematic of reflective single-pixel imaging (SPI) experimental setup. (h) The reconstructed images of objects "1" and "2" with different colors and backgrounds. Reprinted with permission from Ref. [102]. Copyright 2022 Wiley-VCH.

[1]
Hu X T, Li F Y, Song Y L. Wearable power source: A newfangled feasibility for perovskite photovoltaics. ACS Energy Lett, 2019, 4, 1065 doi: 10.1021/acsenergylett.9b00503
[2]
Song Q, Wang Y, Vogelbacher F, et al. Moiré perovskite photodetector toward high sensitive digital polarization imaging. Adv Energy Mater, 2021, 11, 2100742 doi: 10.1002/aenm.202100742
[3]
Zhang X N, Liu X Y, Sun B, et al. Broadening the spectral response of perovskite photodetector to the solar-blind ultraviolet region through phosphor encapsulation. ACS Appl Mater Interfaces, 2021, 13, 44509 doi: 10.1021/acsami.1c09719
[4]
Wang H, Kim D H. Perovskite-based photodetectors: Materials and devices. Chem Soc Rev, 2017, 46, 5204 doi: 10.1039/C6CS00896H
[5]
Rogalski A. A look at the future of perovskite detectors. Appl Phys Lett, 2024, 125, 090501 doi: 10.1063/5.0228001
[6]
Seo J, Lee J H, Pak J, et al. Ultrasensitive photodetection in MoS2 avalanche phototransistors. Adv Sci, 2021, 8, e2102437 doi: 10.1002/advs.202102437
[7]
Wang H L, Guo J X, Miao J S, et al. Emerging single-photon detectors based on low-dimensional materials. Small, 2022, 18, e2103963 doi: 10.1002/smll.202103963
[8]
Liu M Z, Johnston M B, Snaith H J. Efficient planar heterojunction perovskite solar cells by vapour deposition. Nature, 2013, 501, 395 doi: 10.1038/nature12509
[9]
Snaith H J. Perovskites: The emergence of a new era for low-cost, high-efficiency solar cells. J Phys Chem Lett, 2013, 4, 3623 doi: 10.1021/jz4020162
[10]
Lee M M, Teuscher J, Miyasaka T, et al. Efficient hybrid solar cells based on meso-superstructured organometal halide perovskites. Science, 2012, 338, 643 doi: 10.1126/science.1228604
[11]
Fu Y, Yuan M, Zhao Y J, et al. Gradient bandgap-tunable perovskite microwire arrays toward flexible color-cognitive devices. Adv Funct Materials, 2023, 33, 2214094 doi: 10.1002/adfm.202214094
[12]
Liu Z R, Zhang Z G, Zhang X N, et al. Achieving high responsivity and detectivity in a quantum-dot-in-perovskite photodetector. Nano Lett, 2023, 23, 1181 doi: 10.1021/acs.nanolett.2c04144
[13]
Han T H, Tan S, Xue J J, et al. Interface and defect engineering for metal halide perovskite optoelectronic devices. Adv Mater, 2019, 31, e1803515 doi: 10.1002/adma.201803515
[14]
Li M D, Cao C S, Liu W B, et al. Orientation regulation of one-dimensional CsCu2I3 perovskites for visible-blind ultraviolet photodetectors. J Phys Chem Lett, 2022, 13, 6462 doi: 10.1021/acs.jpclett.2c01715
[15]
Zou C, Liu Q, Chen K, et al. A high-performance polarization-sensitive and stable self-powered UV photodetector based on a dendritic crystal lead-free metal-halide CsCu2I3/GaN heterostructure. Mater Horiz, 2022, 9, 1479 doi: 10.1039/D1MH02073K
[16]
Treglia A, Ambrosio F, Martani S, et al. Effect of electronic doping and traps on carrier dynamics in tin halide perovskites. Mater Horiz, 2022, 9, 1763 doi: 10.1039/D2MH00008C
[17]
Shi S W, Li Y F, Li X Y, et al. Advancements in all-solid-state hybrid solar cells based on organometal halide perovskites. Mater Horiz, 2015, 2, 378 doi: 10.1039/C4MH00236A
[18]
Dou L T, Yang Y M, You J B, et al. Solution-processed hybrid perovskite photodetectors with high detectivity. Nat Commun, 2014, 5, 5404 doi: 10.1038/ncomms6404
[19]
Jun T, Sim K, Iimura S, et al. Lead-free highly efficient blue-emitting Cs3Cu2I5 with 0D electronic structure. Adv Mater, 2018, 30, 1804547 doi: 10.1002/adma.201804547
[20]
Feng X P, He Y H, Qu W, et al. Spray-coated perovskite hemispherical photodetector featuring narrow-band and wide-angle imaging. Nat Commun, 2022, 13, 6106 doi: 10.1038/s41467-022-33934-1
[21]
Lv J N, Lu X Y, Li X, et al. Epitaxial growth of lead-free 2D Cs3Cu2I5 perovskites for high-performance UV photodetectors. Small, 2022, 18, 2201715 doi: 10.1002/smll.202201715
[22]
Liu J Q, Gong J D, Wei H H, et al. A bioinspired flexible neuromuscular system based thermal-annealing-free perovskite with passivation. Nat Commun, 2022, 13, 7427 doi: 10.1038/s41467-022-35092-w
[23]
Tian X Y, Wang R N, Xu Y L, et al. Triangular micro-grating via femtosecond laser direct writing toward high-performance polarization-sensitive perovskite photodetectors. Adv Optical Mater, 2022, 10, 2200856 doi: 10.1002/adom.202200856
[24]
Yadav S N S, Chen P L, Liu C H, et al. Plasmonic metasurface integrated black phosphorus-based mid-infrared photodetector with high responsivity and speed. Adv Mater Interfaces, 2023, 10, 2202403 doi: 10.1002/admi.202202403
[25]
Tang Y J, Jin P, Wang Y, et al. Enabling low-drift flexible perovskite photodetectors by electrical modulation for wearable health monitoring and weak light imaging. Nat Commun, 2023, 14, 4961 doi: 10.1038/s41467-023-40711-1
[26]
Gu L L, Poddar S, Lin Y J, et al. A biomimetic eye with a hemispherical perovskite nanowire array retina. Nature, 2020, 581, 278 doi: 10.1038/s41586-020-2285-x
[27]
Green M A, Ho-Baillie A, Snaith H J. The emergence of perovskite solar cells. Nature Photon, 2014, 8, 506 doi: 10.1038/nphoton.2014.134
[28]
Chang S H, Koo J H, Yoo J, et al. Flexible and stretchable light-emitting diodes and photodetectors for human-centric optoelectronics. Chem Rev, 2024, 124, 768 doi: 10.1021/acs.chemrev.3c00548
[29]
Liang W Q, Li Y, Ma J L, et al. A solution-processed ternary copper halide thin films for air-stable and deep-ultraviolet-sensitive photodetector. Nanoscale, 2020, 12, 17213 doi: 10.1039/D0NR03630G
[30]
Qiao B S, Wang S Y, Zhang Z H, et al. Photosensitive dielectric 2D perovskite based photodetector for dual wavelength demultiplexing. Adv Mater, 2023, 35, 2300632 doi: 10.1002/adma.202300632
[31]
Noel N K, Wenger B, Habisreutinger S N, et al. Utilizing nonpolar organic solvents for the deposition of metal-halide perovskite films and the realization of organic semiconductor/perovskite composite photovoltaics. ACS Energy Lett, 2022, 7, 1246 doi: 10.1021/acsenergylett.2c00120
[32]
Wang M, Sun H X, Cao F R, et al. Moisture-triggered self-healing flexible perovskite photodetectors with excellent mechanical stability. Adv Mater, 2021, 33, 2100625 doi: 10.1002/adma.202100625
[33]
Vuong V H, Pammi S V N, Pasupuleti K S, et al. Engineering chemical vapor deposition for lead-free perovskite-inspired MA3Bi2I9 self-powered photodetectors with high performance and stability. Adv Optical Mater, 2021, 9, 2100192 doi: 10.1002/adom.202100192
[34]
Tian C C, Wang F, Wang Y P, et al. Chemical vapor deposition method grown all-inorganic perovskite microcrystals for self-powered photodetectors. ACS Appl Mater Interfaces, 2019, 11, 15804 doi: 10.1021/acsami.9b03551
[35]
Fang H J, Li J W, Ding J, et al. An origami perovskite photodetector with spatial recognition ability. ACS Appl Mater Interfaces, 2017, 9, 10921 doi: 10.1021/acsami.7b02213
[36]
Kong W C, Zhao C, Huang T, et al. Accurate adjusting the lattice strain of triple-cation and mixed-halide perovskites for high-performance photodetector. ACS Appl Mater Interfaces, 2022, 14, 28154 doi: 10.1021/acsami.2c02427
[37]
Li S X, Xu X L, Yang Y, et al. Highly deformable high-performance paper-based perovskite photodetector with improved stability. ACS Appl Mater Interfaces, 2021, 13, 31919 doi: 10.1021/acsami.1c05828
[38]
Kim J H, Stolte M, Würthner F. Wavelength and polarization sensitive synaptic phototransistor based on organic n-type semiconductor/supramolecular J-aggregate heterostructure. ACS Nano, 2022, 16, 19523 doi: 10.1021/acsnano.2c09747
[39]
Lin D Y, Liu J B, Haroldson R, et al. High-performance directly patterned nanograting perovskite photodetector with interdigitated electrodes. Adv Optical Mater, 2022, 10, 2201516 doi: 10.1002/adom.202201516
[40]
Wang X Z, Li J, Chen Y F, et al. Spray-coating thick films of all-inorganic halide perovskites for filterless narrowband photodetectors. ACS Appl Mater Interfaces, 2022, 14, 24583 doi: 10.1021/acsami.2c03585
[41]
Thornber T, Game O S, Cassella E J, et al. Nonplanar spray-coated perovskite solar cells. ACS Appl Mater Interfaces, 2022, 14, 37587 doi: 10.1021/acsami.2c05085
[42]
Wang S H, Gu Z K, Zhao R D, et al. A general method for growth of perovskite single-crystal arrays for high performance photodetectors. Nano Res, 2022, 15, 6568 doi: 10.1007/s12274-022-4205-x
[43]
Vescio G, Sanchez-Diaz J, Frieiro J L, et al. 2D PEA2SnI4 inkjet-printed halide perovskite LEDs on rigid and flexible substrates. ACS Energy Lett, 2022, 7, 3653 doi: 10.1021/acsenergylett.2c01773
[44]
Schröder V R F, Fratzscher N, Zorn Morales N, et al. Bicolour, large area, inkjet-printed metal halide perovskite light emitting diodes. Mater Horiz, 2024, 11, 1989 doi: 10.1039/D3MH02025H
[45]
Zuo C T, Zhang L X, Pan X Y, et al. Perovskite films with gradient bandgap for self-powered multiband photodetectors and spectrometers. Nano Res, 2023, 16, 10256 doi: 10.1007/s12274-023-5714-y
[46]
Liu Y J, Gao Y X, Zhi J Y, et al. All-inorganic lead-free NiOx/Cs3Bi2Br9 perovskite heterojunction photodetectors for ultraviolet multispectral imaging. Nano Res, 2022, 15, 1094 doi: 10.1007/s12274-021-3608-4
[47]
Wang Q L, Zhang G N, Zhang H Y, et al. High-resolution, flexible, and full-color perovskite image photodetector via electrohydrodynamic printing of ionic-liquid-based ink. Adv Funct Mater, 2021, 31, 2100857 doi: 10.1002/adfm.202100857
[48]
Li G H, Che T, Ji X Q, et al. Record-low-threshold lasers based on atomically smooth triangular nanoplatelet perovskite. Adv Funct Mater, 2019, 29, 1805553 doi: 10.1002/adfm.201805553
[49]
Zhou H, Yuan S P, Wang X X, et al. Vapor growth and tunable lasing of band gap engineered cesium lead halide perovskite micro/nanorods with triangular cross section. ACS Nano, 2017, 11, 1189 doi: 10.1021/acsnano.6b07374
[50]
Du W N, Zhang S, Wu Z Y, et al. Unveiling lasing mechanism in CsPbBr3 microsphere cavities. Nanoscale, 2019, 11, 3145 doi: 10.1039/C8NR09634A
[51]
Li Y, Shi Z F, Wang L T, et al. Solution-processed one-dimensional CsCu2I3 nanowires for polarization-sensitive and flexible ultraviolet photodetectors. Mater Horiz, 2020, 7, 1613 doi: 10.1039/D0MH00250J
[52]
Chen Y C, Li Y, Niu S F, et al. High temperature resistant solar-blind ultraviolet photosensor for neuromorphic computing and cryptography. Adv Funct Materials, 2024, 34, 2315383 doi: 10.1002/adfm.202315383
[53]
Yang Y Q, Li Y, Chen D, et al. Zero-bias Bi-based perovskite image sensor arrays with direct laser-scribing process. J Mater Chem C, 2023, 11, 13539 doi: 10.1039/D3TC02180G
[54]
Gong X, Tong M H, Xia Y J, et al. High-detectivity polymer photodetectors with spectral response from 300 nm to 1450 nm. Science, 2009, 325, 1665 doi: 10.1126/science.1176706
[55]
Xie C, Liu C K, Loi H L, et al. Perovskite-based phototransistors and hybrid photodetectors. Adv Funct Materials, 2020, 30, 1903907 doi: 10.1002/adfm.201903907
[56]
Chen Y C, Niu S F, Li Y, et al. Flexible single microwire X-ray detector with ultrahigh sensitivity for portable radiation detection system. Adv Mater, 2024, 2404656 doi: 10.1002/adma.202404656
[57]
Bin Kim D, Han J, Jung Y S, et al. Origin of the anisotropic-strain-driven photoresponse enhancement in inorganic halide-based self-powered flexible photodetectors. Mater Horiz, 2022, 9, 1207 doi: 10.1039/D1MH02055B
[58]
Wang S L, Frisch S, Zhang H, et al. Grain engineering for improved charge carrier transport in two-dimensional lead-free perovskite field-effect transistors. Mater Horiz, 2022, 9, 2633 doi: 10.1039/D2MH00632D
[59]
Guan X, Lu J X, Wei Q, et al. Suppressing disproportionation decomposition in Sn-based perovskite light-emitting diodes. ACS Energy Lett, 2023, 8, 1597 doi: 10.1021/acsenergylett.2c02822
[60]
Wang C H, Cui S Q, Ju Y Y, et al. Color-stable two-dimensional tin-based perovskite light-emitting diodes: Passivation effects of diphenylphosphine oxide derivatives. Adv Funct Mater, 2023, 33, 2301304 doi: 10.1002/adfm.202301304
[61]
Chao I H, Yang Y T, Yu M H, et al. Performance enhancement of lead-free 2D tin halide perovskite transistors by surface passivation and its impact on non-volatile photomemory characteristics. Small, 2023, 19, 2207734 doi: 10.1002/smll.202207734
[62]
Wu D, Li W H, Liu H C, et al. Universal strategy for improving perovskite photodiode performance: Interfacial built-in electric field manipulated by unintentional doping. Adv Sci, 2021, 8, 2101729 doi: 10.1002/advs.202101729
[63]
Tan S, Huang T Y, Yavuz I, et al. Surface reconstruction of halide perovskites during post-treatment. J Am Chem Soc, 2021, 143, 6781 doi: 10.1021/jacs.1c00757
[64]
Li Z W, Liu Y J, He J Z, et al. Cs2AgBiBr6-based heterojunction photodetector for weak-light imaging application. Surf Interfaces, 2022, 29, 101705 doi: 10.1016/j.surfin.2021.101705
[65]
Aung S K K, Vijayan A, Boschloo G, et al. Enhanced thermal stability of low-temperature processed carbon-based perovskite solar cells by a combined antisolvent/polymer deposition method. Energy Technol, 2022, 10, 2200177 doi: 10.1002/ente.202200177
[66]
Yang F, Kapil G, Zhang P T, et al. Dependence of acetate-based antisolvents for high humidity fabrication of CH3NH3PbI3 perovskite devices in ambient atmosphere. ACS Appl Mater Interfaces, 2018, 10, 16482 doi: 10.1021/acsami.8b02554
[67]
Zeng F J, Guo Y Y, Hu W, et al. Green anti-solvent assisted crystallization strategy for air-stable uniform Cs3Cu2I5 perovskite films with highly efficient blue photoluminescence. J Lumin, 2020, 223, 117178 doi: 10.1016/j.jlumin.2020.117178
[68]
Zhang Z Y, Sun L, Wang G P. Lateral perovskite single-crystal capacitors for self-powered photodetection. Adv Electron Mater, 2023, 9, 2201318 doi: 10.1002/aelm.202201318
[69]
Huang J M, Zou S W, Lin J, et al. Ultrathin lead-free double perovskite cesium silver bismuth bromide nanosheets. Nano Res, 2021, 14, 4079 doi: 10.1007/s12274-021-3343-x
[70]
Li S X, Xu Y S, Li C L, et al. Perovskite single-crystal microwire-array photodetectors with performance stability beyond 1 year. Adv Mater, 2020, 32, 2001998 doi: 10.1002/adma.202001998
[71]
Li S X, Xia H, Wang L, et al. Self-powered and flexible photodetector with high polarization sensitivity based on MAPbBr3–MAPbI3 microwire lateral heterojunction. Adv Funct Mater, 2022, 32, 2206999 doi: 10.1002/adfm.202206999
[72]
Ma Z Z, Shi Z F, Wang L T, et al. Water-induced fluorescence enhancement of lead-free cesium bismuth halide quantum dots by 130% for stable white light-emitting devices. Nanoscale, 2020, 12, 3637 doi: 10.1039/C9NR10075J
[73]
Wu J B, Zhang X Y, Wang Z Y, et al. Near-infrared polarization-sensitive photodetectionviainterfacial symmetry engineering of an Si/MAPbI3 heterostructural single crystal. Mater Horiz, 2023, 10, 952 doi: 10.1039/D2MH01287A
[74]
Song J Z, Xu L M, Li J H, et al. Monolayer and few-layer all-inorganic perovskites as a new family of two-dimensional semiconductors for printable optoelectronic devices. Adv Mater, 2016, 28, 4861 doi: 10.1002/adma.201600225
[75]
Li S X, Xia H, Sun X C, et al. Curved photodetectors based on perovskite microwire arrays via in situ conformal nanoimprinting. Adv Funct Mater, 2022, 32, 2202277 doi: 10.1002/adfm.202202277
[76]
Li Y F, Feng J, Sun H B. Perovskite quantum dots for light-emitting devices. Nanoscale, 2019, 11, 19119 doi: 10.1039/C9NR06191F
[77]
Zhang H Y, Wang B L, Niu Z J, et al. Ultrasmall water-stable CsPbBr3 quantum dots with high intensity blue emission enabled by zeolite confinement engineering. Mater Horiz, 2023, 10, 5079 doi: 10.1039/D3MH01092A
[78]
Zhou X Y, Wang C, Luo J L, et al. High-performance self-powered UV photodetector based on CuI/CsCu2I3/GaN heterojunction. Chem Eng J, 2022, 450, 136364 doi: 10.1016/j.cej.2022.136364
[79]
Cao F R, Meng L X, Wang M, et al. Gradient energy band driven high-performance self-powered perovskite/CdS photodetector. Adv Mater, 2019, 31, 1806725 doi: 10.1002/adma.201806725
[80]
Qiu X C, Xia J N, Liu Y, et al. Ambient-stable 2D dion–jacobson phase tin halide perovskite field-effect transistors with mobility over 1.6 cm2 V−1 s−1. Adv Mater, 2023, 35, 2305648 doi: 10.1002/adma.202305648
[81]
Chen J X, Liu X Y, Li Z Q, et al. Work-function-tunable MXenes electrodes to optimize p-CsCu2I3/n-Ca2Nb3-xTaxO10 junction photodetectors for image sensing and logic electronics. Adv Funct Mater, 2022, 32, 2201066 doi: 10.1002/adfm.202201066
[82]
Guo L T, Zhang K, Tao M Q, et al. Bio-inspired micro area concentrated array assisted perovskite photodetector toward weak light imaging. J Mater Chem C, 2023, 11, 8045 doi: 10.1039/D2TC03760B
[83]
Li S X, Xia H, Liu T Y, et al. In situ encapsulated moiré perovskite for stable photodetectors with ultrahigh polarization sensitivity. Adv Mater, 2023, 35, 2207771 doi: 10.1002/adma.202207771
[84]
Wang B, Zou Y T, Lu H Y, et al. Boosting perovskite photodetector performance in NIR using plasmonic bowtie nanoantenna arrays. Small, 2020, 16, 2001417 doi: 10.1002/smll.202001417
[85]
Lee Y H, Lee S H, Won Y, et al. Boosting the performance of flexible perovskite photodetectors using hierarchical plasmonic nanostructures. Small Struct, 2024, 5, 2300546 doi: 10.1002/sstr.202300546
[86]
Xiao X, Bao C X, Fang Y J, et al. Argon plasma treatment to tune perovskite surface composition for high efficiency solar cells and fast photodetectors. Adv Mater, 2018, 30, 1705176 doi: 10.1002/adma.201705176
[87]
Li M Y, Shen K, Xu H, et al. Enhanced spatial light confinement of all inorganic perovskite photodetectors based on hybrid plasmonic nanostructures. Small, 2020, 16, 2004234 doi: 10.1002/smll.202004234
[88]
Dcosta J V, Ochoa D, Sanaur S. Recent progress in flexible and wearable all organic photoplethysmography sensors for SpO2 monitoring. Adv Sci, 2023, 10, 2302752 doi: 10.1002/advs.202302752
[89]
Liu F C, Liu K, Rafique S, et al. Highly efficient and stable self-powered mixed tin-lead perovskite photodetector used in remote wearable health monitoring technology. Adv Sci, 2023, 10, 2205879 doi: 10.1002/advs.202205879
[90]
Wu W T, Li L L, Li Z X, et al. Extensible integrated system for real-time monitoring of cardiovascular physiological signals and limb health. Adv Mater, 2023, 35, 2304596 doi: 10.1002/adma.202304596
[91]
Xu Z S, Pan X J, Lu H, et al. Surface energy-assisted patterning of vapor deposited all-inorganic perovskite arrays for wearable optoelectronics. Adv Sci, 2024, 11, 2402635 doi: 10.1002/advs.202402635
[92]
Zhou Y, Qiu X, Wan Z A, et al. Halide-exchanged perovskite photodetectors for wearable visible-blind ultraviolet monitoring. Nano Energy, 2022, 100, 107516 doi: 10.1016/j.nanoen.2022.107516
[93]
Yang Y Q, Li Y, Chen D, et al. Multicolor vision perception of flexible optoelectronic synapse with high sensitivity for skin sunburn warning. Mater Horiz, 2024, 11, 1934 doi: 10.1039/D3MH02154H
[94]
Liu T H, Wang J F, Liu Y S, et al. Cyano-coordinated tin halide perovskites for wearable health monitoring and weak light imaging. Adv Mater, 2024, 36, 2400090 doi: 10.1002/adma.202400090
[95]
Leung S F, Ho K T, Kung P K, et al. A self-powered and flexible organometallic halide perovskite photodetector with very high detectivity. Adv Mater, 2018, 30, 1704611 doi: 10.1002/adma.201704611
[96]
Lu Q C, Zhang Y F, Yang G L, et al. Large-scale, uniform-patterned CsCu2I3 films for flexible solar-blind photodetectors array with ultraweak light sensing. Small, 2023, 19, 2300364 doi: 10.1002/smll.202300364
[97]
Jiang Y L, Li G, Wang J J. Photoacoustic compound fire alarm system for detecting particles and carbon monoxide in smoke. Fire Technol, 2016, 52, 1255 doi: 10.1007/s10694-015-0542-6
[98]
Martin G, Boehmer H, Olenick S M. Thermally-induced failure of smoke alarms. Fire Technol, 2020, 56, 673 doi: 10.1007/s10694-019-00898-6
[99]
Zhang Z X, Xu C H, Zhu C Y, et al. Fabrication of MAPbI3 perovskite/Si heterojunction photodetector arrays for image sensing application. Sens Actuat A Phys, 2021, 332, 113176 doi: 10.1016/j.sna.2021.113176
[100]
Wang B, Zhang C, Zeng B, et al. Fabrication of addressable perovskite film arrays for high-performance photodetection and real-time image sensing application. J Phys Chem Lett, 2021, 12, 2930 doi: 10.1021/acs.jpclett.1c00521
[101]
Wu D J, Xu Y C, Zhou H, et al. Ultrasensitive, flexible perovskite nanowire photodetectors with long-term stability exceeding 5000 H. InfoMat, 2022, 4, e12320 doi: 10.1002/inf2.12320
[102]
Zhang Z H, Zheng P X, Yan S S, et al. Ultrasensitive perovskite photodetector for filter-free color single-pixel imaging. Adv Optical Mater, 2023, 11, 2201847 doi: 10.1002/adom.202201847
[103]
Dong K L, Zhou H, Gao Z, et al. 2D perovskite single-crystalline photodetector with large linear dynamic range for UV weak-light imaging. Adv Funct Mater, 2024, 34, 2306941 doi: 10.1002/adfm.202306941
[104]
Li C, Li J X, Li C Y, et al. Sensitive photodetector arrays based on patterned CH3NH3PbBr3 single crystal microplate for image sensing application. Adv Optical Mater, 2021, 9, 2100371 doi: 10.1002/adom.202100371
[105]
Zhan Z Y, Lin D X, Cai J T, et al. A perovskite photodetector crossbar array by vapor deposition for dynamic imaging. Adv Mater, 2022, 34, 2207106 doi: 10.1002/adma.202207106
[106]
Yeo Z Y, Ling Z P, Ho J W, et al. Status review and future perspectives on mitigating light-induced degradation on silicon-based solar cells. Renew Sustain Energy Rev, 2022, 159, 112223 doi: 10.1016/j.rser.2022.112223
[107]
Wu W Q, Han X, Li J, et al. Ultrathin and conformable lead halide perovskite photodetector arrays for potential application in retina-like vision sensing. Adv Mater, 2021, 33, 2006006 doi: 10.1002/adma.202006006
[108]
Gunasekaran R K, Chinnadurai D, Selvaraj A R, et al. Revealing the self-degradation mechanisms in methylammonium lead iodide perovskites in dark and vacuum. Chemphyschem, 2018, 19, 1507 doi: 10.1002/cphc.201800002
[109]
Nguyen T M H, Lee S K, Kim S, et al. Practical demonstration of deep-ultraviolet detection with wearable and self-powered halide perovskite-based photodetector. ACS Appl Mater Interfaces, 2021, 13, 57609 doi: 10.1021/acsami.1c18099
[110]
Wang M, Tian W, Cao F R, et al. Flexible and self-powered lateral photodetector based on inorganic perovskite CsPbI3–CsPbBr3 heterojunction nanowire array. Adv Funct Mater, 2020, 30, 1909771 doi: 10.1002/adfm.201909771
[111]
Bao C X, Yang J, Bai S, et al. High performance and stable all-inorganic metal halide perovskite-based photodetectors for optical communication applications. Adv Mater, 2018, 30, 1803422 doi: 10.1002/adma.201803422
[112]
Zhu Z H, Deng W, Li W, et al. Antisolvent-induced fastly grown all-inorganic perovskite CsPbCl3 microcrystal films for high-sensitive UV photodetectors. Adv Mater Interfaces, 2021, 8, 2001812 doi: 10.1002/admi.202001812
[113]
Naikaew A, Kumnorkaew P, Supasai T, et al. Enhancing high humidity stability of quasi-2D perovskite thin films through mixed cation doping and solvent engineering. ChemNanoMat, 2019, 5, 1280 doi: 10.1002/cnma.201900189
[114]
Naikaew A, Kumnorkaew P, Wattanathana W, et al. Investigation of double-layered Pb-Sn perovskite absorbers: Formation, structure, band alignment, and stability. J Phys Chem C, 2022, 126, 1623 doi: 10.1021/acs.jpcc.1c08811
[115]
Qiu J, Xia Y D, Zheng Y T, et al. 2D intermediate suppression for efficient ruddlesden–popper (RP) phase lead-free perovskite solar cells. ACS Energy Lett, 2019, 4, 1513 doi: 10.1021/acsenergylett.9b00954
  • Search

    Advanced Search >>

    GET CITATION

    shu

    Export: BibTex EndNote

    Article Metrics

    Article views: 542 Times PDF downloads: 53 Times Cited by: 0 Times

    History

    Received: 24 September 2024 Revised: 22 October 2024 Online: Accepted Manuscript: 27 November 2024Uncorrected proof: 18 December 2024Published: 15 January 2025

    Catalog

      Email This Article

      User name:
      Email:*请输入正确邮箱
      Code:*验证码错误
      Yaqian Yang, Ying Li, Di Chen, Guozhen Shen. Advances in flexible weak-light detectors based on perovskites: preparation, optimization, and application[J]. Journal of Semiconductors, 2025, 46(1): 011608. doi: 10.1088/1674-4926/24090046 ****Y Q Yang, Y Li, D Chen, and G Z Shen, Advances in flexible weak-light detectors based on perovskites: preparation, optimization, and application[J]. J. Semicond., 2025, 46(1), 011608 doi: 10.1088/1674-4926/24090046
      Citation:
      Yaqian Yang, Ying Li, Di Chen, Guozhen Shen. Advances in flexible weak-light detectors based on perovskites: preparation, optimization, and application[J]. Journal of Semiconductors, 2025, 46(1): 011608. doi: 10.1088/1674-4926/24090046 ****
      Y Q Yang, Y Li, D Chen, and G Z Shen, Advances in flexible weak-light detectors based on perovskites: preparation, optimization, and application[J]. J. Semicond., 2025, 46(1), 011608 doi: 10.1088/1674-4926/24090046

      Advances in flexible weak-light detectors based on perovskites: preparation, optimization, and application

      DOI: 10.1088/1674-4926/24090046
      CSTR: 32376.14.1674-4926.24090046
      More Information
      • Yaqian Yang got her Master’s degree in Physics from University of Science and Technology Beijing in 2024. Currently, she is pursuing her Ph.D. at the School of Integrated Circuits and Electronics, Beijing Institute of Technology. Her current research focuses on bionic visual sensors based on lead-free perovskite materials
      • Ying Li is an associate professor and doctoral supervisor at the School of Integrated Circuits and Electronics, Beijing Institute of Technology. Her main research focus is the preparation of all-inorganic halide materials and the corresponding research on optoelectronic devices. She has made many original scientific achievements in the fields of visual sensing, polarization detection, and optoelectronic synapses. In the past five years, more than 40 high-level academic papers have been published in international journals, 6 national patents have been granted, and many research results have been selected as highly cited papers by the Essential Science Indicators (ESI). She has also served as a guest editor for the Electronics journal
      • Di Chen received her B.S. degree from Anhui Normal University (1999) and the Ph.D. degree from the University of Science and Technology of China (2005). Currently, she is a professor at the University of Science and Technology, Beijing. Her research interests focus on designing nano-structures for sustainable energy applications, including energy storage, solar cells, and photocatalysis
      • Guozhen Shen is a professor and doctoral supervisor of the School of Integrated Circuits and Electronics, Beijing Institute of Technology. He is also the winner of the National Outstanding Youth Science Fund. He serves as the director of the Institute of Flexible Electronics of Beijing Institute of Technology, a fellow of the Royal Society of Chemistry, a council member of the Chinese Society for Materials Research, and vice chairman of the Branch of Nanomaterials and Devices. His main research interests are the construction of low-dimensional semiconductor materials and the development of flexible electronic devices and system applications. Notably, he has achieved many important achievements in the fields of flexible optoelectronic devices and vision chips, machine haptics, and bionic sensors for precision medicine. He is an associate editor/editor of international academic journals Advanced Materials Technologies, Advanced Sensor Research, Science China Materials
      • Corresponding author: liying0326@bit.edu.cngzshen@bit.edu.cn
      • Received Date: 2024-09-24
      • Revised Date: 2024-10-22
      • Available Online: 2024-11-27

      Catalog

        /

        DownLoad:  Full-Size Img  PowerPoint
        Return
        Return