Hybrid Dirac semimetal-based photodetector with efficient low-energy photon harvesting

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作者
Lin Wang
Li Han
Wanlong Guo
Libo Zhang
Chenyu Yao
Zhiqingzi Chen
Yulu Chen
Cheng Guo
Kaixuan Zhang
Chia-Nung Kuo
Chin Shan Lue
Antonio Politano
Huaizhong Xing
Mengjie Jiang
Xianbin Yu
Xiaoshuang Chen
Wei Lu
机构
[1] Chinese Academy of Sciences,State Key Laboratory for Infrared Physics, Shanghai Institute of Technical Physics
[2] Donghua University,Department of Optoelectronic Science and Engineering
[3] University of Chinese Academy of Sciences,College of Physics and Optoelectronic Engineering, Hangzhou Institute for Advanced Study
[4] ShanghaiTech University,School of Physical Science and Technology
[5] The 50th Research Institute of China Electronics Technology Group,Research Center for Intelligent Network
[6] Zhejiang Lab,Department of Physics
[7] Cheng Kung University,INSTM and Department of Physical and Chemical Sciences
[8] University of L’Aquila,undefined
[9] CNR-IMM Istituto per la Microelettronica e Microsistemi,undefined
来源
Light: Science & Applications | / 11卷
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摘要
Despite the considerable effort, fast and highly sensitive photodetection is not widely available at the low-photon-energy range (~meV) of the electromagnetic spectrum, owing to the challenging light funneling into small active areas with efficient conversion into an electrical signal. Here, we provide an alternative strategy by efficiently integrating and manipulating at the nanoscale the optoelectronic properties of topological Dirac semimetal PtSe2 and its van der Waals heterostructures. Explicitly, we realize strong plasmonic antenna coupling to semimetal states near the skin-depth regime (λ/104), featuring colossal photoresponse by in-plane symmetry breaking. The observed spontaneous and polarization-sensitive photocurrent are correlated to strong coupling with the nonequilibrium states in PtSe2 Dirac semimetal, yielding efficient light absorption in the photon range below 1.24 meV with responsivity exceeding ∼0.2 A/W and noise-equivalent power (NEP) less than ~38 pW/Hz0.5, as well as superb ambient stability. Present results pave the way to efficient engineering of a topological semimetal for high-speed and low-energy photon harvesting in areas such as biomedical imaging, remote sensing or security applications.
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