Self‐Powered and Broadband Photodetectors Based on High‐performance Mixed Dimensional Sb2O3/PdTe2/Si Heterojunction for Multiplex Environmental Monitoring

Author:

Wang Jingyao1,Ling Cuicui12,Xue Xin1,Ji Hongguang1,Rong Chen1,Xue Qingzhong1,Zhou Peiheng3,Wang Chuanke4,Lu Haipeng3,Liu Wenpeng5ORCID

Affiliation:

1. School of Materials Science and Engineering China University of Petroleum Qingdao 266580 P. R. China

2. National Key Laboratory of Deep Oil and Gas China University of Petroleum (East China) Qingdao 266580 P. R. China

3. National Engineering Research Center of Electromagnetic Radiation Control Materials University of Electronic Science and Technology of China Chengdu 610054 P. R. China

4. Laser fusion research center Chinese Academy of engineering physics Mianyang 621900 P. R. China

5. Renal Division and Division of Engineering in Medicine Department of Medicine Brigham Women's Hospital Harvard Medical School Harvard University Boston MA 02115 USA

Abstract

AbstractSolar‐blind ultraviolet (SBUV) to near‐infrared (NIR) broadband photodetectors (BB‐PD) have important applications in environmental monitoring and other applications. However, it is challenging to prepare SBUV–IR photosensitive materials via simple steps and to construct SBUV–IR broadband devices for multiplex detection with high sensitivity at different wavelengths. Here, self‐powered and broadband photodetectors using a high‐performance mixed dimensional Sb2O3 nanorod 1‐dimension (1D)/monodisperse microdiamond‐like PdTe2 3‐dimension (3D)/Si (3D) heterojunction for multiplex detection of environmental pollutants with high sensitivity at broadband wavelength are developed. The 1D/3D mixed dimensional Sb2O3/PdTe2/Si structure combines the advantages of strong light absorption, high carrier transport efficiency of 1D Sb2O3 nanorods, and expansion of interface barrier caused by 3D microdiamond‐like PdTe2 interlayer to improve the photocurrent density and self‐powered ability. The efficient photogenerated charge separation enables anon/off ratio of more than 5 × 106. The device exhibits excellent photoelectric properties from 255 to 980 nm with the responsivity from 4.56 × 10−2 to 6.55 × 10−1 AW−1, the detectivity from 2.36 × 1012 to 3.39 × 1013 Jones, and the sensitivity from 3.90 × 107 to 1.10 × 1010 cm2 W−1 without external bias. Finally, the proposed device is applied for the multiplex monitoring of environmental pollution gases NO2 with the detection limit of 200 ppb and PM2.5 particles at mild pollution at broadband wavelength. The proposed BB‐PD has great potential for multiplex detection of environmental pollutants and other analytes at broadband wavelength.

Funder

Natural Science Foundation of Shandong Province

National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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