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An Internal-Electrostatic-Field-Boosted Self-Powered Ultraviolet Photodetector

Authors :
Dingcheng Yuan
Lingyu Wan
Haiming Zhang
Jiang Jiang
Boxun Liu
Yongsheng Li
Zihan Su
Junyi Zhai
Source :
Nanomaterials, Vol 12, Iss 18, p 3200 (2022)
Publication Year :
2022
Publisher :
MDPI AG, 2022.

Abstract

Self-powered photodetectors are of significance for the development of low-energy-consumption and environment-friendly Internet of Things. The performance of semiconductor-based self-powered photodetectors is limited by the low quality of junctions. Here, a novel strategy was proposed for developing high-performance self-powered photodetectors with boosted electrostatic potential. The proposed self-powered ultraviolet (UV) photodetector consisted of an indium tin oxide and titanium dioxide (ITO/TiO2) heterojunction and an electret film (poly tetra fluoroethylene, PTFE). The PTFE layer introduces a built-in electrostatic field to highly enhance the photovoltaic effect, and its high internal resistance greatly reduces the dark current, and thus remarkable performances were achieved. The self-powered UV photodetector with PTFE demonstrated an extremely high on–off ratio of 2.49 × 105, a responsivity of 76.87 mA/W, a response rise time of 7.44 ms, and a decay time of 3.75 ms. Furthermore, the device exhibited exceptional stability from room temperature to 70 °C. Compared with the conventional ITO/TiO2 heterojunction without the PTFE layer, the photoresponse of the detector improved by 442-fold, and the light–dark ratio was increased by 8.40 × 105 times. In addition, the detector is simple, easy to fabricate, and low cost. Therefore, it can be used on a large scale. The electrostatic modulation effect is universal for various types of semiconductor junctions and is expected to inspire more innovative applications in optoelectronic and microelectronic devices.

Details

Language :
English
ISSN :
20794991
Volume :
12
Issue :
18
Database :
Directory of Open Access Journals
Journal :
Nanomaterials
Publication Type :
Academic Journal
Accession number :
edsdoj.b765957a2234ee8a002e4c779af6d10
Document Type :
article
Full Text :
https://doi.org/10.3390/nano12183200