海水
光催化
化学工程
分解水
材料科学
化学
无机化学
催化作用
可见光谱
带隙
降级(电信)
作者
Liang Dong,Jingkuo Qu,Qiyuan Wang,Jiaye Cai,Ningning Ma,Y F Li,Guanghui Zhu,Xiangjiu Guan,Li Guo
标识
DOI:10.1021/acsenergylett.6c01324
摘要
Photocatalytic seawater splitting offers a promising route for cost-effective green hydrogen production, yet its long-term stability is restricted by chloride-related corrosive issues. Here, a surface modification strategy of introducing a Cr 2 O 3 nanolayer is applied to the oxygen-evolution cocatalyst, which enables both high efficiency and long-term stability of seawater splitting. In situ Raman and local pH analyses reveal that the as-introduced Cr 2 O 3 Lewis acid layer enriches interfacial OH – to construct a local alkaline microenvironment, promoting water oxidation while suppressing competitive chlorine oxidation and reactive-site corrosion. Theoretical calculations further identify facilitated water dissociation and surface hydroxylation on Cr 2 O 3 as the origin of the interfacial alkalization. The resulting photocatalyst maintains stable seawater splitting performance over 800 h and high quantum efficiency (>90%) comparable to the record value in pure water, demonstrating a robust approach and offering guidance for designing highly stable photocatalysts for practical seawater splitting applications.
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