Tunnel Junction Engineered Photocarrier Dynamics in Epitaxial Semiconductor Nanowires for Efficient and Ultrafast Photoelectrochemical Photodetectors
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[1] Songrui Zhao,et al. Nanowire Template Assisted Epitaxy of Ultrawide Bandgap III-Nitrides on Si: Role of the Nanowire Template , 2023, ACS Applied Optical Materials.
[2] Chao Wu,et al. Review of self-powered solar-blind photodetectors based on Ga2O3 , 2022, Materials Today Physics.
[3] Yuan Luo,et al. Observation of polarity-switchable photoconductivity in III-nitride/MoSx core-shell nanowires , 2022, Light, science & applications.
[4] Yuan Luo,et al. Balancing the Photo‐Induced Carrier Transport Behavior at Two Semiconductor Interfaces for Dual‐Polarity Photodetection , 2022, Advanced Functional Materials.
[5] Muhammad Usman,et al. Recent Progress in Micro‐LED‐Based Display Technologies , 2022, Laser & Photonics Reviews.
[6] Dunjun Chen,et al. Achieving Record High External Quantum Efficiency >86.7% in Solar‐Blind Photoelectrochemical Photodetection , 2022, Advanced Functional Materials.
[7] Zhengyuan Xu,et al. Demonstration of Photoelectrochemical‐Type Photodetectors Using Seawater as Electrolyte for Portable and Wireless Optical Communication , 2022, Advanced Optical Materials.
[8] R. Nötzel,et al. Visible-light photoelectrochemical photodetector based on In-rich InGaN/Cu2O core-shell nanowire p–n junctions , 2022, Applied Physics Letters.
[9] Yuan Luo,et al. Coupling Plasmonic Pt Nanoparticles with AlGaN Nanostructures for Enhanced Broadband Photoelectrochemical-Detection Applications , 2021, ACS Applied Nano Materials.
[10] Shulong Lu,et al. Self-Powered Photoelectrochemical (Al,Ga)N Photodetector with an Ultrahigh Ultraviolet/Visible Reject Ratio and a Quasi-Invisible Functionality for 360° Omnidirectional Detection , 2021 .
[11] Jr-hau He,et al. Photovoltage‐Competing Dynamics in Photoelectrochemical Devices: Achieving Self‐Powered Spectrally Distinctive Photodetection , 2021, Advanced Functional Materials.
[12] Muhammad Hunain Memon,et al. Bidirectional photocurrent in p–n heterojunction nanowires , 2021, Nature Electronics.
[13] Jr-hau He,et al. Tuning the Charge Transfer Dynamics of the Nanostructured GaN Photoelectrodes for Efficient Photoelectrochemical Detection in the Ultraviolet Band , 2021, Advanced Functional Materials.
[14] H. Olin,et al. Dual-polarity output response-based photoelectric devices , 2021 .
[15] P. Tian,et al. InGaN Micro‐LED Array Enabled Advanced Underwater Wireless Optical Communication and Underwater Charging , 2021, Advanced Optical Materials.
[16] Z. Mi,et al. Pt/AlGaN Nanoarchitecture: Toward High Responsivity, Self-Powered Ultraviolet-Sensitive Photodetection. , 2020, Nano letters.
[17] Z. Mi,et al. Highly Uniform, Self‐Assembled AlGaN Nanowires for Self‐Powered Solar‐Blind Photodetector with Fast‐Response Speed and High Responsivity , 2020, Advanced Optical Materials.
[18] L. Largeau,et al. Correlated optical and electrical analyses of inhomogeneous core/shell InGaN/GaN nanowire light emitting diodes , 2020, Nanotechnology.
[19] S. Lau,et al. Recent progress in group III-nitride nanostructures: From materials to applications , 2020 .
[20] Wenliang Wang,et al. Modulating Surface/Interface Structure of Emerging InGaN Nanowires for Efficient Photoelectrochemical Water Splitting , 2020, Advanced Functional Materials.
[21] Fabio Leccese,et al. Underwater Optical Wireless Communications: Overview , 2020, Sensors.
[22] Songrui Zhao,et al. AlGaN Nanowires for Ultraviolet Light-Emitting: Recent Progress, Challenges, and Prospects , 2020, Micromachines.
[23] D. Bouša,et al. Solution‐Processed GaSe Nanoflake‐Based Films for Photoelectrochemical Water Splitting and Photoelectrochemical‐Type Photodetectors , 2020, Advanced Functional Materials.
[24] A. Waag,et al. Beyond solid-state lighting: Miniaturization, hybrid integration, and applications of GaN nano- and micro-LEDs , 2019, Applied Physics Reviews.
[25] X. Qi,et al. Self‐Powered Photodetectors Based on 2D Materials , 2019, Advanced Optical Materials.
[26] Renjie Wang,et al. Epitaxial Growth and Characterization of AlInN-Based Core-Shell Nanowire Light Emitting Diodes Operating in the Ultraviolet Spectrum , 2019, Scientific Reports.
[27] Z. Mi,et al. An In0.42Ga0.58N tunnel junction nanowire photocathode monolithically integrated on a nonplanar Si wafer , 2019, Nano Energy.
[28] Bryan T. Spann,et al. UV LEDs based on p–i–n core–shell AlGaN/GaN nanowire heterostructures grown by N-polar selective area epitaxy , 2019, Nanotechnology.
[29] R. van de Krol,et al. Photocurrent Enhancement by Spontaneous Formation of a p-n Junction in Calcium-Doped Bismuth Vanadate Photoelectrodes. , 2018, ChemPlusChem.
[30] B. Ooi,et al. III-nitride nanowires on unconventional substrates: From materials to optoelectronic device applications , 2018, Progress in Quantum Electronics.
[31] Nasir Saeed,et al. Underwater Optical Wireless Communications, Networking, and Localization: A Survey , 2018, Ad Hoc Networks.
[32] Z. Mi,et al. Solar Water Oxidation by an InGaN Nanowire Photoanode with a Bandgap of 1.7 eV , 2018 .
[33] Zetian Mi,et al. III-Nitride nanowire optoelectronics , 2015 .
[34] Z. Mi,et al. Visible light-driven efficient overall water splitting using p-type metal-nitride nanowire arrays , 2015, Nature Communications.
[35] Z. Mi,et al. Electrically injected near-infrared light emission from single InN nanowire p-i-n diode , 2014 .
[36] Y. Nanishi. The birth of the blue LED , 2014, Nature Photonics.
[37] M. G. Kibria,et al. p-Type InN nanowires. , 2013, Nano letters.
[38] Wei‐De Zhang,et al. MoS2/CdS Heterojunction with High Photoelectrochemical Activity for H2 Evolution under Visible Light: The Role of MoS2 , 2013 .
[39] E. Monroy,et al. AlGaN/AlN quantum dots for UV light emitters , 2013 .
[40] Poul Georg Moses,et al. Band bowing and band alignment in InGaN alloys , 2010 .
[41] J. Lin,et al. Direct hydrogen gas generation by using InGaN epilayers as working electrodes , 2008 .
[42] H. Kakiuchi,et al. Molecular beam epitaxial growth of AlN single crystalline films on Si (111) using radio-frequency plasma assisted nitrogen radical source , 1998 .
[43] J. Zhong,et al. Flexible self-powered photoelectrochemical-type photodetector based on 2D WS2-graphene heterojunction , 2021 .
[44] Michael Grätzel,et al. Photoelectrochemical cells , 2001, Nature.