Highly Responsive Ultrathin GaS Nanosheet Photodetectors on Rigid and Flexible Substrates

纳米片 光电探测器 材料科学 光电流 光电子学 聚对苯二甲酸乙二醇酯 石墨烯 吸收(声学) 单层 纳米技术 复合材料
作者
PingAn Hu,Lifeng Wang,Mina Yoon,Jia Zhang,Wei Feng,Xiaona Wang,Zhenzhong Wen,Juan Carlos Idrobo,Yoshiyuki Miyamoto,David B. Geohegan,Kai Xiao
出处
期刊:Nano Letters [American Chemical Society]
卷期号:13 (4): 1649-1654 被引量:781
标识
DOI:10.1021/nl400107k
摘要

The first GaS nanosheet-based photodetectors are demonstrated on both mechanically rigid and flexible substrates. Highly crystalline, exfoliated GaS nanosheets are promising for optoelectronics due to strong absorption in the UV–visible wavelength region. Photocurrent measurements of GaS nanosheet photodetectors made on SiO2/Si substrates and flexible polyethylene terephthalate (PET) substrates exhibit a photoresponsivity at 254 nm up to 4.2 AW–1 and 19.2 AW–1, respectively, which exceeds that of graphene, MoS2, or other 2D material-based devices. Additionally, the linear dynamic range of the devices on SiO2/Si and PET substrates are 97.7 dB and 78.73 dB, respectively. Both surpass that of currently exploited InGaAs photodetectors (66 dB). Theoretical modeling of the electronic structures indicates that the reduction of the effective mass at the valence band maximum (VBM) with decreasing sheet thickness enhances the carrier mobility of the GaS nanosheets, contributing to the high photocurrents. Double-peak VBMs are theoretically predicted for ultrathin GaS nanosheets (thickness less than five monolayers), which is found to promote photon absorption. These theoretical and experimental results show that GaS nanosheets are promising materials for high-performance photodetectors on both conventional silicon and flexible substrates.
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