Heterojunction Infrared Photodiodes With High Dynamic Range Based on Lead Sulfide Quantum Dot and Zinc Oxide Nanomembrane
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Liang Gao | J. Miao | Weida Hu | Hailu Wang | Xue Zhao | Qixiao Zhao | Xiao Fu | Mengyang Kang | Mengjia Xia | Lixin Dong | Yi Dong | Yicheng Zhu | Jiang Tang | Chao Zhao | Zhihao Xu
[1] Weida Hu,et al. How to characterize figures of merit of two-dimensional photodetectors , 2023, Nature communications.
[2] A. Davydov,et al. Heterojunction tunnel triodes based on two-dimensional metal selenide and three-dimensional silicon , 2022, Nature Electronics.
[3] Liang Gao,et al. A near-infrared colloidal quantum dot imager with monolithically integrated readout circuitry , 2022, Nature Electronics.
[4] P. Heremans,et al. Infrared Colloidal Quantum Dot Image Sensors , 2022, IEEE Transactions on Electron Devices.
[5] J. Miao,et al. Emerging Single-Photon Detectors Based on Low-Dimensional Materials. , 2021, Small.
[6] Jiang Li,et al. Silicon/2D-material photodetectors: from near-infrared to mid-infrared , 2021, Light, science & applications.
[7] C. Anthony,et al. Spray-deposited PbS colloidal quantum dot solid for near-infrared photodetectors , 2020 .
[8] M. Beard,et al. Infrared Quantum Dots: Progress, Challenges, and Opportunities. , 2019, ACS nano.
[9] Bertille Martinez,et al. Road Map for Nanocrystal Based Infrared Photodetectors , 2018, Front. Chem..
[10] Roel Baets,et al. Open-Access Silicon Photonics: Current Status and Emerging Initiatives , 2018, Proceedings of the IEEE.
[11] Peng Wang,et al. Progress, Challenges, and Opportunities for 2D Material Based Photodetectors , 2018, Advanced Functional Materials.
[12] V. Bulović,et al. Synthesis cost dictates the commercial viability of lead sulfide and perovskite quantum dot photovoltaics , 2018 .
[13] Bo Yang,et al. Noise characteristics analysis of short wave infrared InGaAs focal plane arrays , 2017 .
[14] Piers Andrew,et al. Compound Quantum Dot-Perovskite Optical Absorbers on Graphene Enhancing Short-Wave Infrared Photodetection. , 2017, ACS nano.
[15] Gerasimos Konstantatos,et al. MoS2–HgTe Quantum Dot Hybrid Photodetectors beyond 2 µm , 2017, Advanced materials.
[16] Fow-Sen Choa,et al. InGaAs/InP PIN photodetector arrays made by MOCVD based zinc diffusion processes , 2016, SPIE Defense + Security.
[17] Edward H. Sargent,et al. Colloidal quantum dot solids for solution-processed solar cells , 2016, Nature Energy.
[18] Jarek Antoszewski,et al. Progress, challenges, and opportunities for HgCdTe infrared materials and detectors , 2015 .
[19] J. Bauwelinck,et al. III-V-on-Silicon Photonic Devices for Optical Communication and Sensing , 2015 .
[20] Jay Lewis,et al. PbS colloidal quantum dot photodiodes for low-cost SWIR sensing , 2015, Defense + Security Symposium.
[21] W. Tisdale,et al. Monodisperse, air-stable PbS nanocrystals via precursor stoichiometry control. , 2014, ACS nano.
[22] G. Konstantatos,et al. Hybrid graphene-quantum dot phototransistors with ultrahigh gain. , 2011, Nature nanotechnology.
[23] Gregory D. Scholes,et al. Colloidal PbS Nanocrystals with Size‐Tunable Near‐Infrared Emission: Observation of Post‐Synthesis Self‐Narrowing of the Particle Size Distribution , 2003 .
[24] M. Bawendi,et al. Synthesis and characterization of nearly monodisperse CdE (E = sulfur, selenium, tellurium) semiconductor nanocrystallites , 1993 .
[25] Xiaosheng Fang,et al. Nanostructured Photodetectors: From Ultraviolet to Terahertz , 2016, Advanced materials.
[26] Gabriele Navickaite,et al. Hybrid 2D–0D MoS2–PbS Quantum Dot Photodetectors , 2015, Advanced materials.
[27] Z. Jakšić. Introduction: A Path to an Ideal Photonic Infrared Detector , 2014 .
[28] A. Rogalski. Infrared detectors: status and trends , 2003 .