Self-powered perovskite photon-counting detectors

被引:85
|
作者
Zhou, Ying [1 ]
Fei, Chengbin [1 ]
Uddin, Md Aslam [1 ]
Zhao, Liang [1 ]
Ni, Zhenyi [1 ]
Huang, Jinsong [1 ,2 ]
机构
[1] Univ N Carolina, Dept Appl Phys Sci, Chapel Hill, NC 27515 USA
[2] Univ N Carolina, Dept Chem, Chapel Hill, NC 27599 USA
基金
美国国家卫生研究院;
关键词
EFFICIENT; LIGHT; SIPM;
D O I
10.1038/s41586-023-05847-6
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Metal-halide perovskites (MHPs) have been successfully exploited for converting photons to charges or vice versa in applications of solar cells, light-emitting diodes and solar fuels(1-3), for which all these applications involve strong light. Here we show that self-powered polycrystalline perovskite photodetectors can rival the commercial silicon photomultipliers (SiPMs) for photon counting. The photon-counting capability of perovskite photon-counting detectors (PCDs) is mainly determined by shallow traps, despite that deep traps also limit charge-collection efficiency. Two shallow traps with energy depth of 5.8 +/- 0.8 millielectronvolts (meV) and 57.2 +/- 0.1 meV are identified in polycrystalline methylammonium lead triiodide, which mainly stay at grain boundaries and the surface, respectively. We show that these shallow traps can be reduced by grain-size enhancement and surface passivation using diphenyl sulfide, respectively. It greatly suppresses dark count rate (DCR) from >20,000 counts per second per square millimetre (cps mm(-2)) to 2 cps mm(-2) at room temperature, enabling much better response to weak light than SiPMs. The perovskite PCDs can collect.-ray spectra with better energy resolution than SiPMs and maintain performance at high temperatures up to 85 degrees C. The zero-bias operation of perovskite detectors enables no drift of noise and detection property. This study opens a new application of photon counting for perovskites that uses their unique defect properties.
引用
收藏
页码:712 / +
页数:21
相关论文
共 50 条
  • [1] Self-powered perovskite photon-counting detectors
    Ying Zhou
    Chengbin Fei
    Md Aslam Uddin
    Liang Zhao
    Zhenyi Ni
    Jinsong Huang
    Nature, 2023, 616 : 712 - 718
  • [2] Multiplexed photon-counting detectors
    Polyakov, Sergey V.
    Schettini, V.
    Degiovanni, I. P.
    Brida, G.
    Migdall, Alan
    QUANTUM SENSING AND NANOPHOTONIC DEVICES V, 2008, 6900
  • [3] NEW TECHNIQUES IN PHOTON-COUNTING DETECTORS
    CARTER, MK
    PATCHETT, BE
    READ, PD
    WALTHAM, N
    VANBREDA, IG
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1991, 310 (1-2): : 305 - 310
  • [4] Photon-counting detectors for optical communications
    Farr, WH
    2005 Digest of the LEOS Summer Topical Meetings, 2005, : 17 - 18
  • [5] Photon-counting chip for avalanche detectors
    Zappa, F
    Lotito, A
    Tisa, S
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2005, 17 (01) : 184 - 186
  • [6] THEORY OF OPTIMUM PHOTON-COUNTING DETECTORS
    KAMAL, AK
    MALAVIYA, N
    INTERNATIONAL JOURNAL OF ELECTRONICS, 1974, 37 (06) : 817 - 820
  • [7] Photon event centroiding with UV photon-counting detectors
    Hutchings, J. B.
    Postma, J.
    Asquin, D.
    Leahy, D.
    PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF THE PACIFIC, 2007, 119 (860) : 1152 - 1162
  • [8] An interface to evaluate the performance of photon-counting detectors
    Frutos, Maria
    Moya, David
    Vallejo, Juan Carlos
    de Castro, Ana I. Gomez
    SPACE TELESCOPES AND INSTRUMENTATION 2024: ULTRAVIOLET TO GAMMA RAY, PT 1, 2024, 13093
  • [9] IMAGING THERMAL OBJECTS WITH PHOTON-COUNTING DETECTORS
    WATSON, EA
    MORRIS, GM
    APPLIED OPTICS, 1992, 31 (23): : 4751 - 4757
  • [10] Deep UV Photon-Counting Detectors and Applications
    Shaw, Gary A.
    Siegel, Andrew M.
    Model, Joshua
    Geboff, Adam
    Soloviev, Stanislav
    Vert, Alexey
    Sandvik, Peter
    ADVANCED PHOTON COUNTING TECHNIQUES III, 2009, 7320