材料科学
异质结
光催化
压电
制氢
分解水
能量转换效率
化学工程
重组
纳米技术
光电子学
电场
氢
吸附
催化作用
电子
载流子
能量转换
混合材料
复合数
表面光电压
共价键
纳米结构
科技与社会
有效核电荷
光催化分解水
可再生能源
工作(物理)
作者
Qiong Liu,Ziwei Cao,Faqi Zhan,Zezhou Lin,Guoqiang Zou,Hang Luo,Chris R. Bowen,Haitao Huang
摘要
ABSTRACT Suppressing the recombination of photogenerated electrons and holes to achieve highly efficient energy conversion in an environmentally benign manner represents a pivotal challenge in green chemistry. In this work, we report on a novel composite that combines 2D piezoelectric Na─Sm co‐doped CaBi 2 Nb 2 O 9 (NSC) nanoplatelets with a Mn─Cu─Ni─metal‐organic framework (MOF) photocatalyst to create a piezoelectric@photocatalyst (NSC@MOF) heterojunction nanohybrid catalyst. This hybrid system demonstrates remarkable mechano‐driven photocatalytic hydrogen evolution efficiency (441.7 µmol g −1 h −1 ), significantly surpassing the performance of a standalone photocatalyst or piezo‐catalyst. Detailed experimental measurements and theoretical simulations elucidate the underlying catalytic mechanism, that is, the built‐in electric field generated by the piezoelectric NSC during mechanical stimulation inhibits the bulk recombination of photogenerated electron–hole pairs under illumination. Critically, the constructed covalent Mn─O─Sm bridge between the NSC and MOF breaks the high interfacial charge‐transfer barrier and establish a ‘charge transport superhighway’ for mechanically excited free carriers, and build an S‐scheme heterojunction at the NSC–MOF interface for enhanced interfacial charge transfer. The surface of the NSC@MOF exhibits significantly improved adsorption of H + from the solution, enabling efficient piezo‐photocatalytic water splitting. This work presents a novel green strategy for advancing sustainable energy conversion technologies using piezoelectric‐driven photocatalysis.
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