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Unsymmetrical Small Molecules for Broad-Band Photoresponse and Efficient Charge Transport in Organic Phototransistors

Authors :
Lim, Dae-Hee
Kang, Minji
Jang, Soo-Young
Hwang, Kyoungtae
Kim, In-Bok
Jung, Eunhwan
Jo, Yong-Ryun
Kim, Yeon-Ju
Kim, Jihong
Choi, Heechae
Kim, Tae-Wook
Mathur, Sanjay
Kim, Bong-Joong
Kim, Dong-Yu
Lim, Dae-Hee
Kang, Minji
Jang, Soo-Young
Hwang, Kyoungtae
Kim, In-Bok
Jung, Eunhwan
Jo, Yong-Ryun
Kim, Yeon-Ju
Kim, Jihong
Choi, Heechae
Kim, Tae-Wook
Mathur, Sanjay
Kim, Bong-Joong
Kim, Dong-Yu
Publication Year :
2020

Abstract

Organic photosensitizers have been investigated as effective light-sensing elements that can promote strong absorption with high field-effect mobility in organic phototransistors (OPTs). In this study, a novel organic photosensitizer is synthesized to demonstrate broad-band photoresponse with enhanced electrical performance. An unsymmetrical small molecule of a solubilizing donor (D-sol)-acceptor (A)-dye donor (D-dye) type connected with a twisted conjugation system is designed for broad-band detection (ranging from 250 to 700 nm). This molecule has high solubility, thereby facilitating the formation of uniformly dispersed nanoparticles in an insulating polymer matrix, which is deposited on top of OPT semiconductors by a simple solution process. The broad-band photodetection shown by the organic photosensitizer is realized with improved mobility close to an order of magnitude and high on/off current ratio (similar to 10(5)) of the organic semiconductor. Furthermore, p-type charge transport behavior in the channel of the OPT is enhanced through the intrinsic electron-accepting ability of the organic photosensitizer caused by the unique molecular configuration. These structural properties of organic photosensitizers contribute to an improvement in broad-band photosensing systems with new optoelectronic properties and functionalities.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1238106408
Document Type :
Electronic Resource