Deep multiband photodetectors enabled by reconfigurable band alignment in van der Waals heterostructures

Author:

Wang Jinjin1ORCID,Fu Xiao1,Chen Xiaolong2ORCID,Liu Guanyu3,Zhao Qixiao1,Xu Hangyu1,Chen Fansheng1ORCID,Xu Jianbin4,Bae Sang-Hoon5,Zhou Jiadong6,Dong Lixin7,Bao Wenzhong8,Di Zengfeng3,Miao Jinshui1,Hu Weida1ORCID

Affiliation:

1. University of Chinese Academy of Sciences

2. Southern University of Science and Technology

3. Chinese Academy of Sciences

4. The Chinese University of Hong Kong

5. Washington University in Saint Louis

6. Beijing Institute of Technology

7. City University of Hong Kong

8. Fudan University

Abstract

Multiband recognition technology is being extensively investigated because of the increasing demand for on-chip, multifunctional, and sensitive devices that can distinguish coincident spectral information. Most existing multiband imagers use large arrays of photodetectors to capture different spectral components, from which their spectrum is reconstructed. A single device embedded with a convolutional neural network (CNN) capable of recognizing multiband photons allows the footprints of multiband recognition chips to be scaled down while achieving spectral resolution approaching that of benchtop systems. Here, we report a multiple and broadband photodetector based on 2D/3D van der Waals p/n/p heterostructures [p-germanium (Ge)/n-molybdenum disulfide (MoS2)/p-black phosphorus (bP)] with an electrically tunable transport-mediated spectral photoresponse. The devices show bias-tunable multiband photodetection (visible, short-wave infrared, and mid-wave infrared photoresponse). Further combination with the CNN algorithm enables crosstalk suppression of photoresponse to different wavelengths and high-accuracy blackbody radiation temperature recognition. The deep multiband photodetection strategies demonstrated in this work may open pathways towards the integration of multiband vision for application in on-chip neural network perception.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Publisher

Optica Publishing Group

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