Cu2o Quantum Dots Modified Α-Ga2o3 Nanorod Arrays as a Heterojunction for Improved Sensitivity of Self-Powered Photoelectrochemical Detectors
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Peipei Han | Meiling Gao | Peng Hu | Tianxing Kang | Haibo Fan | F. Teng | Wen-Hon Chen
[1] Mengqi Cui,et al. Oxygen-vacancy-dependent high-performance α-Ga2O3 nanorods photoelectrochemical deep UV photodetectors , 2023, Nanotechnology.
[2] Y. Liang,et al. Enhanced gain and detectivity of unipolar barrier solar blind avalanche photodetector via lattice and band engineering , 2023, Nature Communications.
[3] Chao Wu,et al. Review of self-powered solar-blind photodetectors based on Ga2O3 , 2022, Materials Today Physics.
[4] Dunjun Chen,et al. Self-Powered Solar-Blind Photodetectors Based on Vertically Aligned GaN@Ga2O3 Core–Shell Nanowire Arrays , 2022, ACS Applied Nano Materials.
[5] Cheng Feng,et al. Self-Powered Solar-Blind Photodetectors Based on α-Ga2O3 Nanorod Arrays , 2022, ACS Applied Nano Materials.
[6] Mengqi Cui,et al. Boosting Photoresponse of Self-Powered InSe-Based Photoelectrochemical Photodetectors via Suppression of Interface Doping. , 2022, ACS nano.
[7] Bo Liu,et al. ALD oxygen vacancy-rich amorphous Ga2O3 on three-dimensional urchin-like ZnO arrays for high-performance self-powered solar-blind photodetectors. , 2022, Nanoscale.
[8] Jun Chen,et al. Polycrystalline Ga2O3 Nanostructure-Based Thin Films for Fast-Response Solar-Blind Photodetectors , 2022, ACS Applied Nano Materials.
[9] Dongbo Wang,et al. Study on the evolution from α-GaOOH to α-Ga2O3 and Solar-blind Detection behavior of α-GaOOH/α-Ga2O3 Heterojunction , 2022, CrystEngComm.
[10] Wanjun Li,et al. A simple, repeatable and highly stable self-powered solar-blind photoelectrochemical-type photodetector using amorphous Ga2O3 films grown on 3D carbon fiber paper , 2021, Journal of Materials Chemistry C.
[11] F. Teng,et al. Enhanced response speed of TiO2 nanoarrays based all solid-state ultraviolet photodetector via SiO2 dielectric layer , 2021 .
[12] Xuan Wang,et al. Trace amount of niobium doped β-Ga2O3 deep ultraviolet photodetector with enhanced photo-response , 2021 .
[13] B. R. Tak,et al. Ultra-Low Noise and Self-Powered β-Ga2O3 Deep Ultraviolet Photodetector Array with Large Linear Dynamic Range , 2021 .
[14] Y. Hao,et al. Ultrahigh‐Performance Solar‐Blind Photodetectors Based on High Quality Heteroepitaxial Single Crystalline β‐Ga2O3 Film Grown by Vacuumfree, Low‐Cost Mist Chemical Vapor Deposition , 2021, Advanced Materials Technologies.
[15] Dongbo Wang,et al. Nano tree-like branched structure with α-Ga2O3 covered by γ-Al2O3 for highly efficient detection of solar-blind ultraviolet light using self-powered photoelectrochemical method , 2020 .
[16] S. Long,et al. Review of polymorphous Ga2O3 materials and their solar-blind photodetector applications , 2020, Journal of Physics D: Applied Physics.
[17] S. Bellani,et al. Liquid-Phase Exfoliated GeSe Nanoflakes for Photoelectrochemical-Type Photodetectors and Photoelectrochemical Water Splitting , 2020, ACS applied materials & interfaces.
[18] U. Annapure,et al. Optimal fabrication of 0D/1D Cu2O quantum dots sensitized CdS nanorods heterojunction: Efficient photoredox catalyst for H2 generation under visible light irradiation , 2020 .
[19] Weihua Tang,et al. A self-powered solar-blind photodetector with largeVocenhancing performance based on the PEDOT:PSS/Ga2O3organic–inorganic hybrid heterojunction , 2020 .
[20] Ruxandra Vidu,et al. The Growth of Ga2O3 Nanowires on Silicon for Ultraviolet Photodetector , 2019, Sensors.
[21] Weihua Tang,et al. Photoelectrochemical Self-Powered Solar-Blind Photodetectors Based on Ga2O3 Nanorod Array/Electrolyte Solid/Liquid Heterojunctions with a Large Separation Interface of Photogenerated Carriers , 2019, ACS Applied Nano Materials.
[22] Dejun Li,et al. Influence of annealing temperature on structure and photoelectrical performance of β-Ga2O3/4H-SiC heterojunction photodetectors , 2019, Journal of Alloys and Compounds.
[23] Qian Sun,et al. Improving the Current Spreading by Locally Modulating the Doping Type in the n-AlGaN Layer for AlGaN-Based Deep Ultraviolet Light-Emitting Diodes , 2019, Nanoscale Research Letters.
[24] Weihua Tang,et al. α-Ga2O3 Nanorod Array–Cu2O Microsphere p–n Junctions for Self-Powered Spectrum-Distinguishable Photodetectors , 2019, ACS Applied Nano Materials.
[25] Shiming Ni,et al. Solar-blind ultraviolet photodetection of an α-Ga2O3 nanorod array based on photoelectrochemical self-powered detectors with a simple, newly-designed structure , 2019, Journal of Materials Chemistry C.
[26] Weihua Tang,et al. In situ synthesis of monoclinic β-Ga2O3 nanowires on flexible substrate and solar-blind photodetector , 2019, Journal of Alloys and Compounds.
[27] Zewen Liu,et al. Solar-blind ultraviolet detection based on TiO2 nanoparticles decorated graphene field-effect transistors , 2019, Nanophotonics.
[28] Weihua Tang,et al. Self-Powered Ultraviolet Photodetector with Superhigh Photoresponsivity (3.05 A/W) Based on the GaN/Sn:Ga2O3 pn Junction. , 2018, ACS nano.
[29] Wei Zheng,et al. Vacuum-Ultraviolet Photodetection in Few-Layered h-BN. , 2018, ACS applied materials & interfaces.
[30] Weihua Tang,et al. Low-voltage-worked photodetector based on Cu2O/GaOOH shell-core heterojunction nanorod arrays , 2018, Journal of Alloys and Compounds.
[31] Lingping Kong,et al. Effect of MgO Surface Modification on the TiO2 Nanowires Electrode for Self-Powered UV Photodetectors , 2018 .
[32] Chade Lv,et al. NiO Quantum Dot Modified TiO2 toward Robust Hydrogen Production Performance , 2018 .
[33] Yue Hao,et al. Comparison Study of β-Ga2O3 Photodetectors Grown on Sapphire at Different Oxygen Pressures , 2017, IEEE Photonics Journal.
[34] Z. Wu,et al. β-Ga2O3 solar-blind deep-ultraviolet photodetector based on annealed sapphire substrate , 2017, 2016 IEEE International Nanoelectronics Conference (INEC).
[35] Jing-wen Zhang,et al. Fabrication of three dimensional diamond ultraviolet photodetector through down-top method , 2016 .
[36] Yinghua Zhang,et al. Self-powered UV–visible photodetectors based on ZnO/Cu2O nanowire/electrolyte heterojunctions , 2016 .
[37] Y. Hao,et al. Comparison Study of $\beta $ -Ga2O3 Photodetectors on Bulk Substrate and Sapphire , 2016, IEEE Transactions on Electron Devices.
[38] R. Zheng,et al. Low‐Dimensional Structure Vacuum‐Ultraviolet‐Sensitive (λ < 200 nm) Photodetector with Fast‐Response Speed Based on High‐Quality AlN Micro/Nanowire , 2015, Advanced materials.
[39] Hexing Li,et al. Plasmonic silver quantum dots coupled with hierarchical TiO2 nanotube arrays photoelectrodes for efficient visible-light photoelectrocatalytic hydrogen evolution , 2015, Scientific Reports.
[40] Xiaoyan Yan,et al. Chemical bath deposition of Cu2O quantum dots onto ZnO nanorod arrays for application in photovoltaic devices , 2015 .
[41] Manijeh Razeghi,et al. AlxGa1-xN-based back-illuminated solar-blind photodetectors with external quantum efficiency of 89% , 2013 .
[42] Linfeng Hu,et al. Low‐Dimensional Nanostructure Ultraviolet Photodetectors , 2013, Advanced materials.
[43] Masataka Imura,et al. Comprehensive Investigation of Single Crystal Diamond Deep-Ultraviolet Detectors , 2012 .
[44] S. Young,et al. MgZnO Nanorod Homojunction Photodetectors for Solar-Blind Detection , 2011 .
[45] N. Chouhan,et al. Photocatalytic CdSe QDs-decorated ZnO nanotubes: an effective photoelectrode for splitting water. , 2011, Chemical communications.
[46] A. Nozik. Photoelectrochemical cells , 1980, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.