OPTICS & OPTOELECTRONIC TECHNOLOGY, Volume. 23, Issue 2, 39(2025)

PbS Quantum Dot Photodetector Based on SnO2 Electron Transport Layer

FENG Wen-zhi and LIU Huan
Author Affiliations
  • School of Opto-Electronical Engineering,Xi’an Technological University,Xi’an 710021,China
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    References(13)

    [2] [2] Wang Zan, Gu Yunjiao, Xu Zhihao. Single pixel black phosphorus photodetector for near-infrared imaging[J]. Small, 2018, 14(2):23-30.

    [3] [3] Koppens FH, Mueller T, Avouris P, et al. Photodetectors based on graphene, other two-dimensional materials and hybrid systems[J]. Nat Nanotechnol, 2014, 9(10):780-793.

    [4] [4] Zhong jun Li, Hui Qiao, Zhinan Guo. High-performance photo-electrochemical photodetector based on liquid-exfoliated few-layered InSe nanosheets with enhanced stability[J]. Advanced Optical Materials, 2017, 8(6):540-546.

    [5] [5] Mei Luyao, Runfeng Huang, Chaorong Shen, et al. Hybrid halide perovskite‐based near‐infrared photodetectors and imaging arrays[J]. Advanced Optical Materials, 2022, 10(9):10-20.

    [6] [6] Guo R, Zhang M, Ding J, et al. Advances in colloidal quantum dot-based photodetectors[J]. Journal of Materials Chemistry C , 2022, 10(19):7404-22.

    [7] [7] Gong W, Wang P, Dai D, et al. Infrared colloidal quantum dots for photoelectric conversion devices[J]. Journal of Materials Chemistry C, 2021, 9(9):2994-3025.

    [8] [8] Khan AH, Thupakula U, Dalui A, et al. Evolution of long range bandgap tunable lead sulfide nanocrystals with photovoltaic properties[J]. The Journal of Physical Chemistry C, 2013, 117(15):7934-9.

    [9] [9] Zhang L, Chen L, Yang J, et al. High-performance and stable colloida l quantum dots imager via energy band engineering[J]. Nano. Letters, 2023, 23(14):6489-6496.

    [10] [10] Miller E M, Kroupa D M, Zhang J, et al. Revisiting the valence and conduction band size dependence of PbS quantum dot thin films[J]. ACS Nano., 2016, 10(3):3302-3311.

    [11] [11] Ma H, Wang M, Wang Y, et al. Asymmetric organic diammonium salt buried in SnO2 layer enables fast carrier transfer and interfacial defects passivation for efficient perovskite solar cells[J]. Chemical Engineering Journal, 2022, 442:136291.

    [12] [12] Altinkaya C, Aydin E, Ugur E, et al. Tin oxide electron‐selective laye rs for efficient, stable, and scalable perovskite solar cells[J]. Advanced Materials, 2021, 33(15):504-512.

    [13] [13] Moreels I, Lambert K, Smeets D, et al. Size-dependent optical properties of colloidal PbS quantum dots[J]. ACS Nano., 2009, 3(10):3023-3030.

    [14] [14] Ka I, Le Borgne V, Fujisawa K, et al. PbS-quantum-dots/double-wall-carbon-nanotubes nanohybrid based photodetectors with extremely fast response and high responsivity[J]. Materials Today Energy, 2020, 16:100378.

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    FENG Wen-zhi, LIU Huan. PbS Quantum Dot Photodetector Based on SnO2 Electron Transport Layer[J]. OPTICS & OPTOELECTRONIC TECHNOLOGY, 2025, 23(2): 39

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    Paper Information

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    Received: Sep. 21, 2024

    Accepted: Apr. 18, 2025

    Published Online: Apr. 18, 2025

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