| Citation: |
Congrui Jing, Haozhe Zhao, Siyang Guo, Jihong Liu, Shufang Wang, Shuang Qiao. Pyroelectrically enhanced high-sensitivity self-powered position-sensitive detector based on ZnO/P(VDF-TrFE)-MAPbI3 heterojunction with multifunctional imaging capability[J]. Journal of Semiconductors, 2026, In Press. doi: 10.1088/1674-4926/26010044
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C R Jing, H Z Zhao, S Y Guo, J H Liu, S F Wang, and S Qiao, Pyroelectrically enhanced high-sensitivity self-powered position-sensitive detector based on ZnO/P(VDF-TrFE)-MAPbI3 heterojunction with multifunctional imaging capability[J]. J. Semicond., 2026, accepted doi: 10.1088/1674-4926/26010044
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Pyroelectrically enhanced high-sensitivity self-powered position-sensitive detector based on ZnO/P(VDF-TrFE)-MAPbI3 heterojunction with multifunctional imaging capability
DOI: 10.1088/1674-4926/26010044
CSTR: 32376.14.1674-4926.26010044
More Information-
Abstract
In recent years, position-sensitive detectors (PSDs) have found widespread application in displacement measurement, optical measurement, imaging, and laser communication, owing to their high spatial resolution and rapid response capabilities. However, the performance and operating mechanisms of perovskite-based PSDs remain insufficiently elucidated. In this work, we fabricated a high-sensitivity self-powered PSD based on a ZnO/P(VDF-TrFE)-CH3NH3PbI3(MAPbI3) heterojunction. Systematic optimization revealed an optimal P(VDF-TrFE) doping concentration of 5 mg/mL, enabling the device to achieve a remarkable positional sensitivity (PS) of 307.03 mV/mm with a minimum nonlinearity of 1.02%. Furthermore, the intrinsic pyroelectric property of P(VDF-TrFE) induces a significant pyroelectrically enhanced lateral photovoltaic effect (LPE), boosting the PS to 511.33 mV/mm—an enhancement of 166.5%. The heterojunction PSD maintains effective operational performance over an electrode spacing range of 0.5−2.2 mm. While the LPE response declines with increasing spacing, a considerable pyroelectric effect (PE)-enhanced PS of 70.67 mV/mm is retained even at 2.2 mm. Importantly, we demonstrate multi-wavelength imaging by exploiting both the inherent LPE response and its pyroelectrically enhanced counterpart, with imaging intensity tunable via electrode spacing control. This study provides crucial insights into the LPE behavior of the heterojunction and systematically clarifies the mechanism by which the PE modulates device performance and imaging capabilities. -
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Supplements
Supporting_Information.pdf
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Proportional views



Congrui Jing received her M.S. degree in College of Electronic Information Engineering, Hebei University in 2020. She is currently a PhD student at College of Physics and Technology, Hebei University. Her research focuses on optoelectronic devices based on perovskite materials.
Jihong Liu received her M.S. degree in College of Physics and Information Engineering, Hebei Normal University in 2008, and joined in College of Physics Science and Technology, Hebei University in 2014. Her research focuses on the fields of preparation of solar cells and the optoelectronic/photovoltaic performances of semiconductor heterostructures.
Shuang Qiao earned his Ph.D. degree from the Institute of Semiconductors, Chinese Academy of Sciences in 2014. Following that, he joined the Hebei University and has been serving as a full professor since 2022. From 2017 to 2019, he worked as a visiting fellow at the Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences. His research primarily focuses on the fabrication of novel semiconductor heterostructures, investigating their optoelectronic and photovoltaic properties, exploring ultrafast dynamics, and studying the piezo/pyro-phototronic effects of nano devices.
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