Photosensitive Dielectric 2D Perovskite Based Photodetector for Dual Wavelength Demultiplexing

Author:

Qiao Bao‐Shi1,Wang Su‐Yun2,Zhang Zhi‐Hong13,Lian Zhen‐Dong1,Zheng Zhi‐Yao4,Wei Zhi‐Peng3,Li Lin5,Ng Kar Wei1ORCID,Wang Shuang‐Peng1ORCID,Liu Zhi‐Bo2

Affiliation:

1. Institute of Applied Physics and Materials Engineering University of Macau Macao SAR 999078 P. R. China

2. The Key Laboratory of Weak Light Nonlinear Photonics Ministry of Education School of Physics and Teda Applied Physics Institute Nankai University Tianjin 300071 P. R. China

3. State Key Laboratory of High Power Semiconductor Lasers Changchun University of Science and Technology Changchun 130022 P. R. China

4. State Key Laboratory of Luminescence and Applications Changchun Institute of Optics Fine Mechanics and Physics Chinese Academy of Sciences No. 3888 Dongnanhu Road Changchun 130033 P. R. China

5. Key Laboratory for Photonic and Electronic Bandgap Materials Ministry of Education School of Physics & Electron Engineering Harbin Normal University Harbin 150025 P. R. China

Abstract

AbstractStacked 2D perovskites provide more possibilities for next generation photodetector with more new features. Compared with its excellent optoelectronic properties, the good dielectric performance of metal halide perovskite rarely comes into notice. Here, a bifunctional perovskite based photovoltaic detector capable of two wavelength demultiplexing is demonstrated. In the Black Phosphorus/Perovskite/MoS2 structured photodetector, the comprehensive utilization of the photosensitive and dielectric properties of 2D perovskite allows the device to work in different modes. The device shows normal continuous photoresponse under 405 nm, while it shows a transient spike response to visible light with longer wavelengths. The linear dynamic range, rise/decay time, and self‐powered responsivity under 405 nm can reach 100, 38 µs/50 µs, and 17.7 mA W‐1, respectively. It is demonstrated that the transient spike photocurrent with long wavelength exposure is related to the illumination intensity and can coexist with normal photoresponse. Two waveband‐dependent signals can be identified and used to reflect more information simultaneously. This work provides a new strategy for multispectral detection and demultiplexing, which can be used to improve data transfer rates and encrypted communications. This work mode can inspire more multispectral photodetectors with different stacked 2D materials, especially to the optoelectronic application of the wide bandgap, high dielectric photosensitive materials.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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