Electrically tunable two-dimensional heterojunctions for miniaturized near-infrared spectrometers

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作者
Wenjie Deng
Zilong Zheng
Jingzhen Li
Rongkun Zhou
Xiaoqing Chen
Dehui Zhang
Yue Lu
Chongwu Wang
Congya You
Songyu Li
Ling Sun
Yi Wu
Xuhong Li
Boxing An
Zheng Liu
Qi jie Wang
Xiangfeng Duan
Yongzhe Zhang
机构
[1] Beijing University of Technology,Key Laboratory of Optoelectronics Technology, Ministry of Education, Faculty of Information Technology
[2] Beijing University of Technology,Key Laboratory of Advanced Functional Materials, Ministry of Education, Faculty of Materials and Manufacturing
[3] Nanyang Technological University,Centre for OptoElectronics and Biophotonics, School of Electrical and Electronic Engineering
[4] University of California,Department of Chemistry and Biochemistry
[5] Los Angeles,California NanoSystems Institute
[6] University of California,Beijing Key Laboratory of Microstructure and Properties of Solids, Faculty of Materials and Manufacturing
[7] Los Angeles,School of Materials Science and Engineering
[8] Beijing University of Technology,Centre for Disruptive Photonic Technologies, School of Physical and Mathematical Sciences
[9] Nanyang Technological University,undefined
[10] Nanyang Technological University,undefined
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摘要
Miniaturized spectrometers are of considerable interest for their portability. Most designs to date employ a photodetector array with distinct spectral responses or require elaborated integration of micro & nano optic modules, typically with a centimeter-scale footprint. Here, we report a design of a micron-sized near-infrared ultra-miniaturized spectrometer based on two-dimensional van der Waals heterostructure (2D-vdWH). By introducing heavy metal atoms with delocalized electronic orbitals between 2D-vdWHs, we greatly enhance the interlayer coupling and realize electrically tunable infrared photoresponse (1.15 to 1.47 μm). Combining the gate-tunable photoresponse and regression algorithm, we achieve spectral reconstruction and spectral imaging in a device with an active footprint < 10 μm. Considering the ultra-small footprint and simple fabrication process, the 2D-vdWHs with designable bandgap energy and enhanced photoresponse offer an attractive solution for on-chip infrared spectroscopy.
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