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Bulk-Heterojunction Electrocatalysts in Confined Geometry Boosting Stable, Acid/Alkaline-Universal Water Electrolysis

Authors
장규용Kim SungsoonChoi JinuPark JeonghwanAn SieonBaek JihyunLi YuzheLiu Tae-KyungKim EugeneLee Jung HwanWang HaotianKim MinjoongCho Hyun-SeokZheng XiaolinYoo Jong SukSeo KwanyongPark Jong Hyeok
Issue Date
Apr-2024
Publisher
Wiley-VCH Verlag
Citation
Advanced Energy Materials, v.14, no.14
Journal Title
Advanced Energy Materials
Volume
14
Number
14
URI
https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/23386
DOI
10.1002/aenm.202303924
ISSN
1614-6832
1614-6840
Abstract
Alkaline water splitting electrocatalysts have been studied for decades; however, many difficulties remain for commercialization, such as sluggish hydrogen evolution reaction (HER) kinetics and poor catalytic stability. Herein, by mimicking the bulk-heterojunction morphology of conventional organic solar cells, a uniform 10 nm scale nanocube is reported that consists of subnanometer-scale heterointerfaces between transition metal phosphides and oxides, which serves as an alkaline water splitting electrocatalyst; showing great performance and stability toward HER and oxygen evolution reaction (OER). Interestingly, the nanocube electrocatalyst reveals acid/alkaline independency from the synergistic effect of electrochemical HER (cobalt phosphide) and thermochemical water dissociation (cobalt oxide). From the spray coating process, nanocube electrocatalyst spreads uniformly on large scale (approximate to 6.6 x 5.6 cm(2)) and is applied to alkaline water electrolyzers, stably delivering 600 mA cm(-2) current for >100 h. The photovoltaic-electrochemical (PV-EC) system, including silicon PV cells, achieves 11.5% solar-to-hydrogen (STH) efficiency stably for >100 h.
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공과대학 (공과대학 화공생명공학과)
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