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Micro-LEDs in biomedicine: from implantable optogenetics to intelligent theranostics

Yihan Huang1, §, Huaqi Liu2, §, Yun Lin2, Junwei Hu2, Li Zou1, Shula Chen3, Ouying Chen1, , Xiaoyan Yi4, and Liancheng Wang2,

+ Author Affiliations

 Corresponding author: Ouying Chen, 1577554027@qq.com; Xiaoyan Yi, spring@semi.ac.cn; Liancheng Wang, liancheng_wang@csu.edu.cn

DOI: 10.1088/1674-4926/26050037CSTR: 32376.14.1674-4926.26050037

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Abstract: Micro-scale light-emitting diodes (Micro-LEDs) are evolving from display devices to powerful biomedical tools owing to their miniaturization, low power consumption, flexibility and multi-wavelength capability. This review summarizes advances in Micro-LED biomedicine (2024−2026). It introduces core enabling technologies and classifies applications into implantable systems, wearable platforms and brain−computer interfaces, covering optogenetics, cardiac/tumor therapy, epidermal healthcare, visual prostheses and all-optical neural interfaces. Key challenges including biocompatibility, heat dissipation and packaging are discussed. Prospects such as closed-loop intelligent systems, degradable devices and clinical translation are proposed. This review highlights Micro-LEDs’ great potential for next-generation precision medicine.

Keywords: Micro-LEDoptogeneticsimplantable biomedical devicewearable phototherapybrain−computer computer interface



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Fig. 1.  (Color online) Biomedical applications of microscale Micro-LED technology.

Fig. 2.  (Color online) Core technical features of μ-ILED technology. (a) Size comparison: Micro-LEDs (50 μm) are scaled to match biological neurons (~15 μm), far smaller than traditional LEDs (1 mm). (b) Low thermal impact: Brain-implanted μ-ILED shows <0.1°C temperature rise at 20 Hz stimulation, ensuring biocompatibility. (c) Flexible/stretchable wearable device with island-bridge structure, enabling conformal integration with skin for next-generation healthcare applications.

Fig. 3.  (Color online) Evolution of Micro-LED-based neural interfaces, from fiber tethering to wireless, high-resolution primate stimulation. (a) Wireless, injectable, and transcranial optogenetic systems achieve stable long-term modulation (>300 h) with bioinspired 3D helical interconnects (stretchability >90%) and wireless power transfer, enabling reliable operation in freely behaving animals[21]. (b) Flexible optical cuffs (0.127 g) with four individually addressable micro-LEDs achieve sub-fascicle resolution peripheral nerve modulation, inducing fine motor control (elbow/wrist flexion, finger abduction) and maintaining function for up to 12 weeks[34]. (c) Hybrid-integrated large-scale opto-electrophysiology interfaces integrate 256 recording electrodes and 128 stimulation channels on an 8-shank silicon probe, achieving record channel densities (0.56 channels/mm2, 109.71 channels/g) and identifying >160 isolated single units in vivo[46].

Fig. 4.  (Color online) Wearable Micro-LED systems for health monitoring, phototherapy, and sensory rehabilitation. (a) Skin-like health patch (SHP) featuring a 15-μm-thick stretchable substrate integrating a 17 × 7 pixel red Micro-LED display and a PPG sensor. It operates under 30% tensile strain with a total power consumption of 16.5  mW and achieves a signal-to-noise ratio >21  dB, enabling real-time heart rate display (adapted from Ref. [20]). (b) Wireless, battery-free pulse oximeter using red/infrared dual-wavelength Micro-LEDs and RF energy harvesting, demonstrating good consistency with commercial oximeters in venous occlusion tests (adapted from Ref. [59]). (c) Uniform area-source SµLED patch (2025) integrating 900 thin-film Micro-LEDs in a 2 × 2 cm2 area with a light diffusion layer, achieving superior melanogenesis inhibition via downregulation of MITF and tyrosinase compared to traditional LEDs (adapted from Ref. [63]).Ophthalmic and auditory rehabilitation. (d) 16-channel optical cochlear implant (oCI) with individually addressable thin-film Micro-LEDs (60 × 60 μm2, 100 μm pitch). Optogenetic stimulation of CatCh-expressing spiral ganglion neurons evokes auditory brainstem responses with high spectral selectivity, and the device remains stable after 10 000 bending cycles (adapted from Ref. [23]). (e) Smart wireless near-infrared LED contact lens integrating a Micro-LED array, ASIC chip, and wireless power system. In a rabbit model of diabetic retinopathy, 8-week treatment (120  μW, three times weekly) significantly reduces retinal vascular hyperpermeability without thermal damage (adapted from Ref. [22]).

Fig. 5.  (Color online) A mesoscale optogenetics system for high-resolution primate cortical stimulation. (a) System architecture. A million-pixel Micro-LED panel (1280 × 720, 5 μm pitch) projects light patterns onto the cortical surface via a custom wide-field lens. A custom cranial implant with kinematic coupling ensures long-term stability and precise re-alignment. Irradiance at the image plane is linearly tunable from 0 to 3 mW/mm2 per pixel. (b) ChRger exhibits ~10-fold higher light sensitivity than ChR2, enabling robust neuronal activation at irradiance as low as 0.03 mW/mm2 in both mice and monkeys. (c) Single-pixel stimulation evokes cortical responses with a Gaussian profile (σ ≈ 60 μm). Adjacent stimulation sites are resolvable at >80 μm separation (overlap <50%), and two simultaneously activated pixels can be resolved at >120 μm spacing. (d) Stimulation of 144 sites in macaque V1 evokes saccades with retinotopically organized endpoints (R2 > 75%), forming a precise map that remains stable over multiple days (mean drift <0.1° per day). Behavioral effects persist for over one year, demonstrating the system’s robustness and long-term stability (adapted from Ref. [26]).

Fig. 6.  (Color online) Core challenges for implantable micro-LED biomedical devices.

Table 1.   comparison of mainstream optoelectronic platforms for biomedical optical stimulation.

PlatformFeature sizeFlexibilityPower consumptionMulti-wavelength integrationImplantation compatibility
Optical fiber100–200 μm diameterRigid, non-bendableHigh (external laser)Requires light source replacement, hard to integrateHigh invasiveness, physically tethered
Conventional LEDMillimeter scaleRigid, non-conformalRelatively highMostly single wavelengthToo bulky for implantation
OLEDHundreds of micrometersGood flexibilityModerateStacked structure for multi-colorPoor water/oxygen stability, unsuitable for long-term implantation
Laser-based systemHundreds of micrometers spotNo flexibility, fiber-guidedHighSingle wavelengthRequires fiber delivery, invasive
Micro-LED5–50 μmStretchable and bendableLow (high efficiency in pulse mode)Multi-wavelength via heterogeneous integrationMinimally invasive/injectable, suitable for long-term implantation
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Table 2.   Key technological milestones of Micro-LED biomedical applications.

YearMilestone eventTechnological significanceRepresentative reference
2013Injectable wireless optogenetic probe first proposedEstablished the technical paradigm of Micro-LED-based implantable bioelectronicsKim et al., Science[7]
2015Soft, stretchable fully implantable optogenetic system developedExpanded applications to peripheral nerve and spinal cord modulationPark et al., Nat. Biotechnol.[31]
202016-channel optical cochlear implant validated in vivoAchieved high spectral selectivity for auditory rehabilitationDieter et al., EMBO Mol. Med[23]
2024Optogenetic vagus nerve stimulation for myocardial regeneration; implantable immuno-photodynamic tumor therapyExtended to cardiac regenerative medicine and combined cancer immunotherapyYuan et al., Int. J. Biol. Sci.[32]; Choi et al., Biomater. Res[33]
2025Sub-fascicle resolution peripheral nerve modulation; wireless transcranial optogenetics enabling artificial perceptionRealized high-resolution neuromodulation and minimally invasive brain−computer interactionZhou et al., Nat. Commun[34]; Wu et al., Nat. Neurosci[35]
2026Million-pixel mesoscale optogenetics in macaque cortex; smart closed-loop arrhythmia control platform; 300+ h chronic implantation stability validatedCompleted non-human primate validation and system-level intelligent closed-loop breakthroughLi et al., Neuron[26]; Greer et al., Nat. Commun[36]; Deng et al., Adv. Sci[37]
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Table 3.   Dimensional characteristics of representative biomedical Micro-LED devices.

AdvantagesTraditional fiber/LEDMicro-LEDBiomedical significance
Tissue damageDiameter 100–200 μm, requires puncture tractThickness <10 μm, injectable implantationReduced neuronal loss and gliosis
Spatial precisionMillimeter-scale light diffusionMicrometer-scale spot (<50 μm)Targeting individual neurons or subcellular structures
Multi-channel densitySingle channel or low density>500 PPI array integrationHigh-resolution neuromodulation
Implantation siteLimited to deep brain nucleiCan cover cortical surface, peripheral nervesExtends to dynamic tissues like spinal cord, heart
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Table 4.   Overview of mainstream stretchable design strategies for Micro-LED devices.

Research workDevice typeDevice sizeTotal thicknessTotal weightRef.
Kim Science 2013Injectable optogenetic probe50 × 50 μ~20 μm29 mg[7]
Lee Sci Adv 2021Skin-like health patchPixel size N/A15 μmPowered by 3.8 V battery[20]
Lu PNAS 2018Wireless fluorescence photometerµ-ILED + µ-IPD~150 μm29 mg[29]
Dieter EMBO 2020Optical cochlear implant60 × 60 μOn flexible substrate[23]
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Table 5.   Overview of mainstream stretchable design strategies for Micro-LED devices.

StrategyPrincipleRepresentativeStretchability
Wavy/Buckled structurePre-stretch substrate, then release to form wavy interconnectsLee Sci Adv 2021[20]Stable operation under 30% strain
Bioinspired 3D helical interconnect structureHelical architecture mimicking the tendril mechanics of climbing plantsAdv. Opt Mat 2026[21]Stretchability up to 91%, Young’s modulus of 3.58MPa
Serpentine interconnectsDesign curved metal lines to absorb strainKim Science 2013[7]Suitable for low-density arrays
Island-bridge structureRigid device islands + flexible interconnect bridgesPark Nat Biotechnol 2015[31]Full functionality under 50% strain
Intrinsically stretchable materialsConductive polymers or liquid metalsAdvanced research stage>100% stretch potential
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Table 6.   Implementation strategies for multi-wavelength Micro-LED optogenetic stimulation.

Implementation methodPrincipleAdvantagesLimitationsRepresentative work
Heterogeneous integrationTransferring µ-ILEDs of different materials (GaN blue, GaAs red) onto the same substrateHigh spectral purity, individually addressableComplex processKim Science 2013[7]
Fluorescence conversionBlue µ-ILED combined with phosphor/quantum dotsSimple process, scalableConversion efficiency, spectral broadeningKim Science 2013 (Green conversion)[7]
Homogeneous multi-QWDesigning multiple emission colors on a single epi-waferMonolithic integration, high densityHigh material growth difficultyCell Reports Physical Science[42]
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Table 7.   Overview of mainstream wireless power transfer schemes for implantable Micro-LED biomedical systems.

SchemePrincipleOperate frequencyPower outputApplication scenarioRepresentative work
RF energy harvestingNear-field/far-field RF coupling910 MHz4.08 mW (at 1 m distance)Freely moving small animalsKim Science 2013[7]
Near-field magnetic couplingResonant inductive coupling13.56 MHzAdjustableImplantable deep devicesPark oral inflammation device[43]
Ultrasound power transferPiezoelectric transducerMHz rangeUnder developmentDeep tissuesUniversity of California, Berkeley[25]
Photovoltaic powerNIR light illuminating an implanted PV cellConceptual stageLu L Y Adv Energy Mater 2018[5]
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Table 8.   comparison of packaging materials for biomedical Micro-LED implant systems.

MaterialAdvantagesLimitationsApplication example
PDMSFlexible, breathable, easy to processModerate barrier to moisture/oxygenEncapsulation layer in Kim Science 2013[7]
Parylene-CVapor-deposited, conformal, FDA-approvedInternal stress, adhesion issuesSekiguchi flexible arrays[41]
EcoflexExtremely high elasticityLow mechanical strengthStretchable patches[31]
Kapton/PIHigh-temperature resistance, compatible with photolithographyHigher stiffnessProbe substrate[29]
Silk fibroinBiodegradable, temporary fixationControllable dissolution timeInjection-assist layer[7]
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Table 9.   Core design principles of implantable Micro-LED systems.

Design dimensionKey requirementsImplementation strategiesRepresentative works
MiniaturizationCellular scale (<100 μm), ultra-thin (<20 μm)Transfer printing, laser lift-offKim Science 2013[7]
Flexibility/stretchabilityMatch tissue modulus, tolerate dynamic strainIsland-bridge structures, wavy interconnectsPark Nat Biotechnol 2015[31]
Thermal managementTemperature rise <1−2 °CMiniaturized heat sinking, FEM optimizationGreer Nat Commun 2026[36]
Wireless powerBreak physical tethers, enable free behaviorRF harvesting, magnetic couplingMultiple works[15, 43]
Long-term packaging>3 months stable function, low immune responseParylene-C, PDMS multi-layer encapsulationGreer Nat Commun 2026[36]
Multi-channel densityHigh spatial resolution, independent addressingMatrix addressing, CMOS integrationLingang Lab Neuron 2026[26]
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Table 10.   Typical challenges and engineering strategies for epidermal wireless oximeter systems.

ChallengeSpecific problemSolution strategy
Skin conformabilityMotion artifacts affect signal qualityUltra-thin flexible substrate, stretchable interconnects
Power consumptionEnergy demands for long-term continuous monitoringLow-power Micro-LEDs, wireless power transfer
Signal accuracyConsistency with clinical-grade devicesMulti-wavelength compensation, AI denoising
Multi-parameter integrationCovering multiple physiological indices in a single deviceTime multiplexing, multi-spectral design
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Table 11.   Comparison of anti-melanogenic effects between SMicro-LED and traditional LED phototherapy devices.

Measured indicatorSMicro-LED effectComparison with traditional LED
Melanin contentSignificantly reducedSuperior to traditional LED
Melan-ASignificantly down regulatedSuperior to traditional LED
Tyrosinase activitySignificantly inhibitedSuperior to traditional LED
MITF transcription factorSignificantly down regulatedSuperior to traditional LED
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Table 12.   Summary of wearable Micro-LED applications for cutaneous and sensory rehabilitation.

Application areaTarget tissueMicro-LED wavelengthKey mechanism
Hair growthHair follicleRed ~650 nmWnt/β-catenin pathway activation[25]
Skin lighteningMelanocytesSpecific wavelengthsMITF/Tyrosinase inhibition[63]
Diabetic retinopathyRetinal vesselsFar-red/NIRReduced vascular hyperpermeability[22]
Oral inflammationGingival tissueNIR 808 nmPhotobiomodulation promoting repair[43]
Auditory rehabilitationSpiral ganglion neuronsBlue ~470 nmLight-sensitive protein activation[23]
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Table 13.   Comparison of mainstream wireless power transfer schemes for implantable biomedical Micro-LED systems.

SchemeAdvantagesLimitationsRepresentative work
RF Energy harvestingLong range (meter-scale),
mature tech
Power decay with distance, tissue absorptionKim Science 2013[7]
Near-field magnetic couplingHigh efficiency, high powerShort range (cm-scale), alignment sensitivePark oral device[43]
UltrasoundDeep penetration, high safetyLarge transducer size, efficiency needs improvementUC Berkeley team[25]
PhotovoltaicPotential for infinite powerRequires external light, limited depthConceptual[5]
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Table 14.   Multimodal functional modules, integration strategies and application values for Micro-LED neural interfaces.

Functional moduleIntegration methodApplication value
Microelectrode arrayMonolithic integration with Micro-LEDsReal-time recording of stimulation effects, closed-loop control
Microfluidic channelLamination or sidewall integrationLocal drug delivery, gene therapy
Biochemical sensorFunctionalized coating or integrated sensorMonitoring neurotransmitters, pH, oxygen tension
Temperature sensorMetal resistor or thermocoupleThermal safety management, tissue status monitoring
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Table 15.   Key dimensions and implementation approaches for personalized Micro-LED phototherapy.

DimensionPersonalized parametersImplementation method
WavelengthTailored to photosensitizer/drug absorption peakMulti-wavelength Micro-LED array, tunable wavelength
DoseTailored to lesion depth, sizeAdjustable optical power, programmable pulse patterns
TimingTailored to circadian rhythm, treatment phaseProgrammable stimulation sequences, closed-loop feedback
SpatialTailored to lesion shapeHigh-density array, spatial light modulation
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Table 16.   Five-to-ten-year development roadmap for biomedical Micro-LED technology.

Time frameKey Technological breakthroughsRepresentative applications
Short-term (1−3 years)High-density array yield improvement (>95%)
standardization of multi-wavelength heterogeneous integration
validation of long-term flexible packaging stability (>6 months)
Commercialization of wearable phototherapy products
Widespread use in rodent neuroscience research
Preclinical studies of optical cochlear implants
Medium-term (3−5 years)Prototype validation of closed-loop intelligent systems
Controlled functional lifetime for degradable devices (1−4 weeks)
mature multimodal integration platforms
Validation of visual prostheses in macaque models
Preclinical studies of wireless pacemakers
Clinical studies of diabetic retinopathy phototherapy
Long-term (5−10 years)Fully integrated AI-Micro-LED systems
Large-scale single-neuron resolution interfaces
Established clinical protocols for personalized phototherapy
Human clinical trials of visual prostheses
Market approval of closed-loop epilepsy control systems
Clinical application of degradable phototherapy devices
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    Received: 22 May 2026 Revised: 09 July 2026 Online: Accepted Manuscript: 03 August 2026Uncorrected proof: 03 August 2026

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      Yihan Huang, Huaqi Liu, Yun Lin, Junwei Hu, Li Zou, Shula Chen, Ouying Chen, Xiaoyan Yi, Liancheng Wang. Micro-LEDs in biomedicine: from implantable optogenetics to intelligent theranostics[J]. Journal of Semiconductors, 2026, In Press. doi: 10.1088/1674-4926/26050037 ****Y H Huang, H Q Liu, Y Lin, J W Hu, L Zou, S L Chen, O Y Chen, X Y Yi, and L C Wang, Micro-LEDs in biomedicine: from implantable optogenetics to intelligent theranostics[J]. J. Semicond., 2026, accepted doi: 10.1088/1674-4926/26050037
      Citation:
      Yihan Huang, Huaqi Liu, Yun Lin, Junwei Hu, Li Zou, Shula Chen, Ouying Chen, Xiaoyan Yi, Liancheng Wang. Micro-LEDs in biomedicine: from implantable optogenetics to intelligent theranostics[J]. Journal of Semiconductors, 2026, In Press. doi: 10.1088/1674-4926/26050037 ****
      Y H Huang, H Q Liu, Y Lin, J W Hu, L Zou, S L Chen, O Y Chen, X Y Yi, and L C Wang, Micro-LEDs in biomedicine: from implantable optogenetics to intelligent theranostics[J]. J. Semicond., 2026, accepted doi: 10.1088/1674-4926/26050037

      Micro-LEDs in biomedicine: from implantable optogenetics to intelligent theranostics

      DOI: 10.1088/1674-4926/26050037
      CSTR: 32376.14.1674-4926.26050037
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      • Yihan Huang is currently studying at Hunan University of Chinese Medicine. Her primary research focuses on the mechanisms of type H hypertension and atherosclerosis, alongside interdisciplinary research spanning medicine and engineering
      • Ouying Chen holds a Ph.D, is a Second-Class Professor and doctoral supervisor, primarily engaged in research on the prevention and nursing care of cardiovascular diseases
      • Xiaoyan Yi received her Ph.D. degree from the Institute of Semiconductors, Chinese Academy of Sciences. She is currently a Research Professor at the Institute of Semiconductors, Chinese Academy of Sciences. Her research focuses on wide-bandgap semiconductor materials, novel nitride optoelectronic devices, and functional optoelectronic integrated chip technologies
      • Liancheng Wang obtained his Ph.D. and now works as a Professor and doctoral supervisor at Central South University. His research interests focus on GaN-based Micro-LED devices, micro-nano optoelectronic fabrication, and integrated optoelectronic systems for display
      • Corresponding author: 1577554027@qq.comspring@semi.ac.cnliancheng_wang@csu.edu.cn
      • Received Date: 2026-05-22
      • Revised Date: 2026-07-09
      • Available Online: 2026-08-03

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