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Solar-driven highly selective conversion of glycerol to dihydroxyacetone using surface atom engineered BiVO4 photoanodesopen access

Authors
LU, YUANLee Byoung GuanLin ChengLiu Tae-KyungWang ZhipengMiao JiamingOh Sang HoKim Ki ChulZhang KanPark Jong Hyeok
Issue Date
Jun-2024
Publisher
NATURE PORTFOLIO
Citation
NATURE COMMUNICATIONS, v.15, no.1
Journal Title
NATURE COMMUNICATIONS
Volume
15
Number
1
URI
https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/23051
DOI
10.1038/s41467-024-49662-7
ISSN
2041-1723
Abstract
Dihydroxyacetone is the most desired product in glycerol oxidation reaction because of its highest added value and large market demand among all possible oxidation products. However, selectively oxidative secondary hydroxyl groups of glycerol for highly efficient dihydroxyacetone production still poses a challenge. In this study, we engineer the surface of BiVO4 by introducing bismuth-rich domains and oxygen vacancies (Bi-rich BiVO4-x) to systematically modulate the surface adsorption of secondary hydroxyl groups and enhance photo-induced charge separation for photoelectrochemical glycerol oxidation into dihydroxyacetone conversion. As a result, the Bi-rich BiVO4-x increases the glycerol oxidation photocurrent density of BiVO4 from 1.42 to 4.26 mA cm(-2) at 1.23 V vs. reversible hydrogen electrode under AM 1.5 G illumination, as well as the dihydroxyacetone selectivity from 54.0% to 80.3%, finally achieving a dihydroxyacetone production rate of 361.9 mmol m(-2) h(-1) that outperforms all reported values. The surface atom customization opens a way to regulate the solar-driven organic transformation pathway toward a carbon chain-balanced product.
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College of Engineering > 공과대학 화공생명공학부 > 공과대학 화공생명공학과 > 1. Journal Articles

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