材料科学
压电
异质结
极化(电化学)
纳米棒
选择性
催化作用
吸附
化学工程
解吸
光电子学
能量转换效率
载流子
傅里叶变换红外光谱
化学物理
反应速率
纳米技术
反应机理
单排替反应
光谱学
选择性催化还原
作者
Chunlai Dong,Xiuli Zhang,Yi Wang,Feng Ru Fan
摘要
ABSTRACT Efficient and selective CO 2 conversion under mild conditions remains challenging because rapid interfacial charge recombination and poorly controlled carbon‐conversion pathways often limit both catalytic activity and product selectivity. Here, we report a Pt/Cu 2 O@BaTiO 3 (Pt/Cu 2 O@BTO) dual‐site heterostructure in which Pt and Cu 2 O are spatially separated on piezoelectric BaTiO 3 nanorods to establish differentiated interfaces for CO 2 reduction and H 2 O oxidation. Under coupled mechanical stimulation and light irradiation, stress‐induced piezoelectric polarization synergistically enhances interfacial charge separation while promoting CO 2 adsorption and activation at Pt‐related reduction sites. Benefiting from the piezo‐photocatalytic coupling, Pt/Cu 2 O@BTO achieved a CO production rate of 146.7 µmol g −1 h −1 and a CO selectivity of 95.8%. In situ FTIR spectroscopy combined with theoretical calculations reveals that the dynamic piezoelectric polarization not only accelerates charge transport and CO 2 activation, but also redirects the subsequent evolution of key *CO intermediates by making CO desorption more competitive than further hydrogenation. This work demonstrates that dynamic interfacial polarization can simultaneously regulate charge‐transfer behavior and reaction pathways in CO 2 reduction, providing a strategy for selective carbon conversion in multi‐field catalytic systems.
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