• Photonics Research
  • Vol. 11, Issue 4, 541 (2023)
Xiaobing Hou1, Xitong Hong2, Fengyuan Lin1, Jinzhi Cui1, Qian Dai3, Qianlei Tian2, Bingheng Meng1, Yanjun Liu4, Jilong Tang1、5, Kexue Li1, Lei Liao2, and Zhipeng Wei1、*
Author Affiliations
  • 1State Key Laboratory of High Power Semiconductor Lasers, College of Physics, Changchun University of Science and Technology, Changchun 130022, China
  • 2State Key Laboratory for Chemo/Biosensing and Chemometrics, College of Semiconductors (College of Integrated Circuits), Hunan University, Changsha 410082, China
  • 3Department of Laser Photoelectric Technology, Southwest Institute of Technical Physics, Chengdu 610041, China
  • 4Department of Electrical and Electronic Engineering, Southern University of Science and Technology, Shenzhen 518055, China
  • 5Zhongshan Institute of Changchun University of Science and Technology, Zhongshan 442000, China
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    DOI: 10.1364/PRJ.480612 Cite this Article Set citation alerts
    Xiaobing Hou, Xitong Hong, Fengyuan Lin, Jinzhi Cui, Qian Dai, Qianlei Tian, Bingheng Meng, Yanjun Liu, Jilong Tang, Kexue Li, Lei Liao, Zhipeng Wei. Perovskite/GaAs-nanowire hybrid structure photodetectors with ultrafast multiband response enhancement by band engineering[J]. Photonics Research, 2023, 11(4): 541 Copy Citation Text show less
    References

    [1] Y. Liu, Z. Ji, Y. Li, H. J. Fan, W. Mai. Spectrum-shaped Si-perovskite hybrid photodetectors for hyperspectral bioimaging. Photon. Res., 9, 1734-1744(2021).

    [2] X. Zhao, X. Nie, Z. Yi, T. Peng, M. O. Scully. Imaging through scattering media via spatial–temporal encoded pattern illumination. Photon. Res., 10, 1689-1694(2022).

    [3] H. Wang. High gain single GaAs nanowire photodetector. Appl. Phys. Lett., 103, 093101(2013).

    [4] L.-B. Luo, J.-J. Chen, M.-Z. Wang, H. Hu, C.-Y. Wu, Q. Li, L. Wang, J.-A. Huang, F.-X. Liang. Near-infrared light photovoltaic detector based on GaAs nanocone array/monolayer graphene Schottky junction. Adv. Funct. Mater., 24, 2794-2800(2014).

    [5] Y. Lu, S. Feng, Z. Wu, Y. Gao, J. Yang, Y. Zhang, Z. Hao, J. Li, E. Li, H. Chen, S. Lin. Broadband surface plasmon resonance enhanced self-powered graphene/GaAs photodetector with ultrahigh detectivity. Nano Energy, 47, 140-149(2018).

    [6] M. Yao, N. Huang, S. Cong, C.-Y. Chi, M. A. Seyedi, Y.-T. Lin, Y. Cao, M. L. Povinelli, P. D. Dapkus, C. Zhou. GaAs nanowire array solar cells with axial p-i-n junctions. Nano Lett., 14, 3293-3303(2014).

    [7] N. Han, Z. Yang, F. Wang, G. Dong, S. Yip, X. Liang, T. F. Hung, Y. Chen, J. C. Ho. High-performance GaAs nanowire solar cells for flexible and transparent photovoltaics. ACS Appl. Mater. Interfaces, 7, 20454-20459(2015).

    [8] X. Dai, S. Zhang, Z. Wang, G. Adamo, H. Liu, Y. Huang, C. Couteau, C. Soci. GaAs/AlGaAs nanowire photodetector. Nano Lett., 14, 2688-2693(2014).

    [9] A. C. Farrell, X. Meng, D. Ren, H. Kim, P. Senanayake, N. Y. Hsieh, Z. Rong, T.-Y. Chang, K. M. Azizur-Rahman, D. L. Huffaker. InGaAs-GaAs nanowire avalanche photodiodes toward single-photon detection in free-running mode. Nano Lett., 19, 582-590(2018).

    [10] A. Lysov, S. Vinaji, M. Offer, C. Gutsche, I. Regolin, W. Mertin, M. Geller, W. Prost, G. Bacher, F.-J. Tegude. Spatially resolved photoelectric performance of axial GaAs nanowire pn-diodes. Nano Res., 4, 987-995(2011).

    [11] S. Morkötter, N. Jeon, D. Rudolph, B. Loitsch, D. Spirkoska, E. Hoffmann, M. Döblinger, S. Matich, J. J. Finley, L. J. Lauhon, G. Abstreiter, G. Koblmüller. Demonstration of confined electron gas and steep-slope behavior in delta-doped GaAs-AlGaAs core-shell nanowire transistors. Nano Lett., 15, 3295-3302(2015).

    [12] M. Sun, H. J. Joyce, Q. Gao, H. Tan, C. Jagadish, C. Z. Ning. Removal of surface states and recovery of band-edge emission in InAs nanowires through surface passivation. Nano Lett., 12, 3378-3384(2012).

    [13] X. Chen, N. Xia, Z. Yang, F. Gong, Z. Wei, D. Wang, J. Tang, X. Fang, D. Fang, L. Liao. Analysis of the influence and mechanism of sulfur passivation on the dark current of a single GaAs nanowire photodetector. Nanotechnology, 29, 095201(2018).

    [14] X. Li, X. Yu, H. Zeng, G. Boras, K. Shen, Y. Zhang, J. Wu, K. L. Choy, H. Liu. Optimizing GaAs nanowire-based visible-light photodetectors. Appl. Phys. Lett., 119, 053105(2021).

    [15] X. Zhu, F. Lin, Z. Zhang, X. Chen, H. Huang, D. Wang, J. Tang, X. Fang, D. Fang, J. C. Ho, L. Liao, Z. Wei. Enhancing performance of a GaAs/AlGaAs/GaAs nanowire photodetector based on the two-dimensional electron-hole tube structure. Nano Lett., 20, 2654-2659(2020).

    [16] X. Chen, B. Jiang, D. Wang, G. Li, H. Wang, H. Wang, F. Wang, P. Wang, L. Liao, Z. Wei. Gate-tunable the interface properties of GaAs–WSe2 (1D–2D) vdWs heterojunction for high-responsivity, self-powered photodetector. Appl. Phys. Lett., 118, 041102(2021).

    [17] X. Chen, D. Wang, T. Wang, Z. Yang, X. Zou, P. Wang, W. Luo, Q. Li, L. Liao, W. Hu, Z. Wei. Enhanced photoresponsivity of a GaAs nanowire metal-semiconductor-metal photodetector by adjusting the Fermi level. ACS Appl. Mater. Interfaces, 11, 33188-33193(2019).

    [18] Y. Li, Y. Zhang, Y. Yu, Z. Chen, Q. Li, T. Li, J. Li, H. Zhao, Q. Sheng, F. Yan, Z. Ge, Y. Ren, Y. Chen, J. Yao. Ultraviolet-to-microwave room-temperature photodetectors based on three-dimensional graphene foams. Photon. Res., 8, 368-374(2020).

    [19] H.-J. Syu, H.-C. Chuang, M.-J. Lin, C.-C. Cheng, P.-J. Huang, C. F. Lin. Ultra-broadband photoresponse of localized surface plasmon resonance from Si-based pyramid structures. Photon. Res., 7, 1119-1126(2019).

    [20] L. Xie, B. Chen, F. Zhang, Z. Zhao, X. Wang, L. Shi, Y. Liu, L. Huang, R. Liu, B. Zou, Y. Wang. Highly luminescent and stable lead-free cesium copper halide perovskite powders for UV-pumped phosphor-converted light-emitting diodes. Photon. Res., 8, 768-775(2020).

    [21] G. Li, R. Gao, Y. Han, A. Zhai, Y. Liu, Y. Tian, B. Tian, Y. Hao, S. Liu, Y. Wu, Y. Cui. High detectivity photodetectors based on perovskite nanowires with suppressed surface defects. Photon. Res., 8, 1862-1874(2020).

    [22] T. Li, Q. Li, X. Tang, Z. Chen, Y. Li, H. Zhao, S. Wang, X. Ding, Y. Zhang, J. Yao. Environment-friendly antisolvent tert-amyl alcohol modified hybrid perovskite photodetector with high responsivity. Photon. Res., 9, 781-791(2021).

    [23] Y. Zou, R. J. Holmes. Temperature-dependent bias poling and hysteresis in planar organo-metal halide perovskite photovoltaic cells. Adv. Energy Mater., 6, 1501994(2016).

    [24] Y. Zhao, F. Ma, F. Gao, Z. Yin, X. Zhang, J. You. Research progress in large-area perovskite solar cells. Photon. Res., 8, A1-A15(2020).

    [25] C. Han, C. Li, Z. Zang, M. Wang, K. Sun, X. Tang, J. Du. Tunable luminescent CsPb2Br5 nanoplatelets: applications in light-emitting diodes and photodetectors. Photon. Res., 5, 473-480(2017).

    [26] D. Yan, S. Zhao, H. Wang, Z. Zang. Ultrapure and highly efficient green light emitting devices based on ligand-modified CsPbBr3 quantum dots. Photon. Res., 8, 1086-1092(2020).

    [27] J. Jiang, X. Zou, Y. Lv, Y. Liu, W. Xu, Q. Tao, Y. Chai, L. Liao. Rational design of Al2O3/2D perovskite heterostructure dielectric for high performance MoS2 phototransistors. Nat. Commun., 11, 4266(2020).

    [28] Q. Tian, R. Hong, C. Liu, X. Hong, S. Zhang, L. Wang, Y. Lv, X. Liu, X. Zou, L. Liao. Flexible SnO optoelectronic memory based on light-dependent ionic migration in Ruddlesden–Popper perovskite. Nano Lett., 22, 494-500(2022).

    [29] S. Wei, F. Wang, X. Zou, L. Wang, C. Liu, X. Liu, W. Hu, Z. Fan, J. C. Ho, L. Liao. Flexible quasi-2D perovskite/IGZO phototransistors for ultrasensitive and broadband photodetection. Adv. Mater., 32, 1907527(2020).

    [30] L. Wang, X. Zou, J. Lin, J. Jiang, Y. Liu, X. Liu, X. Zhao, Y. F. Liu, J. C. Ho, L. Liao. Perovskite/black phosphorus/MoS2 photogate reversed photodiodes with ultrahigh light on/off ratio and fast response. ACS Nano, 13, 4804-4813(2019).

    [31] Z. Shuang, H. Zhou, D. Wu, X. Zhang, B. Xiao, J. Duan, H. Wang. High-performance Ag2BiI5 Pb-free perovskite photodetector. Photon. Res., 10, 1886-1891(2022).

    [32] T. Gao, Q. Zhang, J. Chen, X. Xiong, T. Zhai. Performance-enhancing broadband and flexible photodetectors based on perovskite/ZnO-nanowire hybrid structures. Adv. Opt. Mater., 5, 1700206(2017).

    [33] C. S. Ponseca, T. J. Savenije, M. Abdellah, K. Zheng, A. Yartsev, T. R. Pascher, T. Harlang, P. Chabera, T. Pullerits, A. Stepanov, J.-P. Wolf, V. Sundström. Organometal halide perovskite solar cell materials rationalized: Ultrafast charge generation, high and microsecond-long balanced mobilities, and slow recombination. J. Am. Chem. Soc., 136, 5189-5192(2014).

    [34] M. Spina, B. Náfrádi, H.-M. Tóháti, K. Kamarás, E. Bonvin, R. Gaal, L. Forró, E. Horváth. Ultrasensitive 1D field-effect phototransistors: CH3NH3PbI3 nanowire sensitized individual carbon nanotubes. Nanoscale, 8, 4888-4893(2016).

    [35] J. Zhou, Y. Chu, J. Huang. Photodetectors based on two-dimensional layer-structured hybrid lead iodide perovskite semiconductors. ACS Appl. Mater. Interfaces, 8, 25660-25666(2016).

    [36] M. Yuan, L. N. Quan, R. Comin, G. Walters, R. Sabatini, O. Voznyy, S. Hoogland, Y. Zhao, E. M. Beauregard, P. Kanjanaboos, Z. Lu, D. H. Kim, E. H. Sargent. Perovskite energy funnels for efficient light-emitting diodes. Nat. Nanotechnol., 11, 872-877(2016).

    [37] Y. Shao, Y. Liu, X. Chen, C. Chen, I. Sarpkaya, Z. Chen, Y. Fang, J. Kong, K. Watanabe, T. Taniguchi, A. Taylor, J. Huang, F. Xia. Stable graphene-two-dimensional multiphase perovskite heterostructure phototransistors with high gain. Nano Lett., 17, 7330-7338(2017).

    [38] Y. Hou, L. Wang, X. Zou, D. Wan, C. Liu, G. Li, X. Liu, Y. Liu, C. Jiang, J. C. Ho, L. Liao. Substantially improving device performance of all-inorganic perovskite-based phototransistors via indium tin oxide nanowire incorporation. Small, 16, 1905609(2020).

    [39] Y. Tak, H. Kim, D. Lee, K. Yong. Type-II CdS nanoparticle–ZnO nanowire heterostructure arrays fabricated by a solution process: enhanced photocatalytic activity. Chem. Commun., 38, 4585-4587(2008).

    [40] A. A. Bessonov, M. Allen, Y. Liu, S. Malik, J. Bottomley, A. Rushton, I. Medina-Salazar, M. Voutilainen, S. Kallioinen, A. Colli, C. Bower, P. Andrew, T. Ryhänen. Compound quantum dot–perovskite optical absorbers on graphene enhancing short-wave infrared photodetection. ACS Nano, 11, 5547-5557(2017).

    [41] K. Wang, C. Wu, D. Yang, Y. Jiang, S. Priya. Quasi-two-dimensional halide perovskite single crystal photodetector. ACS Nano, 12, 4919-4929(2018).

    [42] Z. Chen, C. Li, A. A. Zhumekenov, X. Zheng, C. Yang, H. Yang, Y. He, B. Turedi, O. F. Mohammed, L. Shen, O. M. Bakr. Solution-processed visible-blind ultraviolet photodetectors with nanosecond response time and high detectivity. Adv. Opt. Mater., 7, 1900506(2019).

    [43] V. Adinolfi, O. Ouellette, M. I. Saidaminov, G. Walters, A. L. Abdelhady, O. M. Bakr, E. H. Sargent. Fast and sensitive solution-processed visible-blind perovskite UV photodetectors. Adv. Mater., 28, 7264-7268(2016).

    [44] E. M. Gallo, G. Chen, M. Currie, T. McGuckin, P. Prete, N. Lovergine, B. Nabet, J. E. Spanier. Picosecond response times in GaAs/AlGaAs core/shell nanowire-based photodetectors. Appl. Phys. Lett., 98, 241113(2011).

    Xiaobing Hou, Xitong Hong, Fengyuan Lin, Jinzhi Cui, Qian Dai, Qianlei Tian, Bingheng Meng, Yanjun Liu, Jilong Tang, Kexue Li, Lei Liao, Zhipeng Wei. Perovskite/GaAs-nanowire hybrid structure photodetectors with ultrafast multiband response enhancement by band engineering[J]. Photonics Research, 2023, 11(4): 541
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