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Tunneling-barrier-controlled sensitive deep ultraviolet photodetectors based on van der Waals heterostructures

Author

Listed:
  • Xiang Li

    (Fudan University
    Fudan University
    Lanzhou Jiaotong University)

  • Ziqing Li

    (Fudan University
    Fudan University)

  • Jinhan Hu

    (Fudan University
    Fudan University
    Lanzhou Jiaotong University)

  • Bangchi Huang

    (Fudan University
    Fudan University)

  • Jianlin Shi

    (Fudan University
    Fudan University)

  • Zhipeng Zhong

    (Fudan University
    Fudan University)

  • YeZhao Zhuang

    (Fudan University
    Fudan University)

  • Yan Chen

    (Fudan University)

  • Jingli Wang

    (Fudan University)

  • Jianfeng Li

    (Lanzhou Jiaotong University)

  • Lei Zhang

    (Lanzhou Jiaotong University)

  • Xiangjian Meng

    (Chinese Academy of Sciences)

  • Wu Shi

    (Fudan University
    Fudan University)

  • Shiyou Chen

    (Fudan University)

  • Xiaosheng Fang

    (Fudan University
    Fudan University)

  • Hai Huang

    (Fudan University
    Fudan University)

  • Jianlu Wang

    (Fudan University
    Fudan University)

  • Junhao Chu

    (Fudan University
    Chinese Academy of Sciences)

Abstract

Deep ultraviolet (DUV) photodetection usually relies on wide-bandgap semiconductors, which however face challenges in material growth and doping processes. In this work, we proposed and validated a photodetection scheme based on tunneling barrier modulation, achieving highly sensitive DUV photodetection. Using a two-dimensional van der Waals heterostructure, the device integrates MoS2 as the transporting layer for its high carrier mobility and low dark current, few-layered graphene (FLG) as the photon absorption layer, and hexagonal boron nitride (hBN) as the dielectric barrier. The device exhibits an photoresponsivity of 4.4 × 106 A·W-1 and specific detectivity of 1.4 × 1017 $${{{\rm{cm}}}}\cdot {{{{\rm{H}}}}{{{\rm{z}}}}}^{-1/2}\cdot {{{{\rm{W}}}}}^{-1}$$ cm ⋅ H z − 1 / 2 ⋅ W − 1 for 250 nm DUV light, with a rejection ratio R250/R450 exceeding 106 for visible light. Unlike conventional photodetectors, the cutoff wavelength is determined by the tunneling barrier rather than the material bandgap. Additionally, this photodetection scheme has been extended to a wide range of materials, utilizing different charge transporting layer (e.g., MoS2, ReS2), barrier layer (e.g., hBN, Al2O3), and photon absorption materials (e.g., FLG, PdSe2, Au, Pd), showcasing its broad adaptability and potential for extensive application. Furthermore, the device has been successfully employed as a power meter for weak UV radiation (0.1 μW·cm-2) and for measuring solar UV irradiance with results matching the meteorological agency’s weather reports. Overall, this work introduces an effective approach for developing high-performance DUV photodetectors, highlighting significant potential for applications in the optoelectronic market.

Suggested Citation

  • Xiang Li & Ziqing Li & Jinhan Hu & Bangchi Huang & Jianlin Shi & Zhipeng Zhong & YeZhao Zhuang & Yan Chen & Jingli Wang & Jianfeng Li & Lei Zhang & Xiangjian Meng & Wu Shi & Shiyou Chen & Xiaosheng Fa, 2025. "Tunneling-barrier-controlled sensitive deep ultraviolet photodetectors based on van der Waals heterostructures," Nature Communications, Nature, vol. 16(1), pages 1-10, December.
  • Handle: RePEc:nat:natcom:v:16:y:2025:i:1:d:10.1038_s41467-025-56886-8
    DOI: 10.1038/s41467-025-56886-8
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    References listed on IDEAS

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    1. Qingyi Zhang & Ning Li & Tao Zhang & Dianmeng Dong & Yongtao Yang & Yuehui Wang & Zhengang Dong & Jiaying Shen & Tianhong Zhou & Yuanlin Liang & Weihua Tang & Zhenping Wu & Yang Zhang & Jianhua Hao, 2023. "Enhanced gain and detectivity of unipolar barrier solar blind avalanche photodetector via lattice and band engineering," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
    2. Jaewoo Shim & Seyong Oh & Dong-Ho Kang & Seo-Hyeon Jo & Muhammad Hasnain Ali & Woo-Young Choi & Keun Heo & Jaeho Jeon & Sungjoo Lee & Minwoo Kim & Young Jae Song & Jin-Hong Park, 2016. "Phosphorene/rhenium disulfide heterojunction-based negative differential resistance device for multi-valued logic," Nature Communications, Nature, vol. 7(1), pages 1-8, December.
    3. Sefaattin Tongay & Hasan Sahin & Changhyun Ko & Alex Luce & Wen Fan & Kai Liu & Jian Zhou & Ying-Sheng Huang & Ching-Hwa Ho & Jinyuan Yan & D. Frank Ogletree & Shaul Aloni & Jie Ji & Shushen Li & Jing, 2014. "Monolayer behaviour in bulk ReS2 due to electronic and vibrational decoupling," Nature Communications, Nature, vol. 5(1), pages 1-6, May.
    4. Fang Wang & Tao Zhang & Runzhang Xie & Zhen Wang & Weida Hu, 2023. "How to characterize figures of merit of two-dimensional photodetectors," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
    5. Gerasimos Konstantatos, 2018. "Current status and technological prospect of photodetectors based on two-dimensional materials," Nature Communications, Nature, vol. 9(1), pages 1-3, December.
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