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조한희

Cho, Han-Hee
Optoelectronic Nanomaterials Engineering Lab.
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Bulk Heterojunction Organic Semiconductor Photoanodes: Tuning Energy Levels to Optimize Electron Injection

Author(s)
Sekar, ArvindhMoreno-Naranjo, Juan ManuelLiu, YongpengYum, Jun-HoDarwich, Barbara PrimeraCho, Han-HeeGuijarro, NestorYao, LiangSivula, Kevin
Issued Date
2022-02
DOI
10.1021/acsami.1c21440
URI
https://scholarworks.unist.ac.kr/handle/201301/57308
Citation
ACS APPLIED MATERIALS & INTERFACES, v.14, no.6, pp.8191 - 8198
Abstract
The use of a bulk heterojunction of organic semiconductors to drive photoelectrochemical water splitting is an emerging trend; however, the optimum energy levels of the donor and acceptor have not been established for photoanode operation with respect to electrolyte pH. Herein, we prepare a set of donor polymers and non-fullerene acceptors with varying energy levels to probe the effect of photogenerated electron injection into a SnO2-based substrate under sacrificial photo-oxidation conditions. Photocurrent density (for sacrificial oxidation) up to 4.1 mA cm–2 was observed at 1.23 V vs reversible hydrogen electrode in optimized photoanodes. Moreover, we establish that a lower-lying donor polymer leads to improved performance due to both improved exciton separation and better charge collection. Similarly, lower-lying acceptors also give photoanodes with higher photocurrent density but with a later photocurrent onset potential and a narrower range of pH for good operation due to the Nernstian behavior of the SnO2, which leads to a smaller driving force for electron injection at high pH.
Publisher
American Chemical Society
ISSN
1944-8244
Keyword (Author)
benzodithiophenephotoelectrochemistrypolymerrylene diimidethiophenedicarboximide

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