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High-Performance Broadband Phototransistor Based on TeOx/IGTO Heterojunctions

Authors
Xu, HongweiKim, TaikyuHan, HeeSungKim, Min JaeHur, Jae SeokChoi, Cheol HeeChang, Joon-HyukJeong, Jae Kyeong
Issue Date
Jan-2022
Publisher
AMER CHEMICAL SOC
Keywords
phototransistor; infrared sensor; tellurium oxide; indium gallium tin oxide; heterojunction; thin-film transistor (TFT)
Citation
ACS APPLIED MATERIALS & INTERFACES, v.14, no.2, pp.3008 - 3017
Indexed
SCIE
SCOPUS
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
14
Number
2
Start Page
3008
End Page
3017
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/139691
DOI
10.1021/acsami.1c18576
ISSN
1944-8244
Abstract
Ultraviolet to infrared broadband spectral detection capability is a technological challenge for sensing materials being developed for high-performance photodetection. In this work, we stacked 9 nm-thick tellurium oxide (TeOx) and 8 nm-thick InGaSnO (IGTO) into a heterostructure at a low temperature of 150 degrees C. The superior photoelectric characteristics we achieved benefit from the intrinsic optical absorption range (300-1500 nm) of the hexagonal tellurium (Te) phase in the TeOx film, and photoinduced electrons are driven effectively by band alignment at the TeOx/IGTO interface under illumination. A photosensor based on our optimized heterostructure exhibited a remarkable detectivity of 1.6 x 10(13) Jones, a responsivity of 84 A/W, and a photosensitivity of 1 x 10(5), along with an external quantum efficiency of 222% upon illumination by blue light (450 nm). Simultaneously, modest detection properties (responsivity: similar to 31 A/W, detectivity: similar to 6 x 10(11) Jones) for infrared irradiation at 970 nm demonstrate that this heterostructure can be employed as a broadband phototransistor. Furthermore, its low-temperature processability suggests that our proposed concept might be used to design array optoelectronic devices for wide band detection with high sensitivity, flexibility, and stability.
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