光电阴极
法拉第效率
材料科学
尿素
极化(电化学)
同步
电化学
动力学
电子转移
还原(数学)
无机化学
联轴节(管道)
工作(物理)
动能
光化学
化学工程
光电子学
分解水
化学物理
光电化学电池
催化作用
纳米尺度
相(物质)
电极
能量转换效率
氧化还原
纳米技术
分析化学(期刊)
光电化学
密度泛函理论
作者
Weijie Zhuang,Miao Kan,Hangyu Hu,Yong Wang,Shiqun Wu,Jinlong Zhang
摘要
ABSTRACT Overcoming the kinetic mismatch between CO 2 and NO 3 − reduction presents a central challenge for urea photoelectrochemical synthesis. Here, we develop segregation‐engineered Si/Pd–Cu photocathodes where nanoscale phase segregations induce dual‐level interfacial polarization. Cu‐rich segregations favor Schottky‐type band modulation, facilitating photogenerated electron extraction. Simultaneously, Pd‐rich domains expose Pd δ+ –Cu δ− ‐like polarized sites that co‐stabilize CO 2 /NO 3 − ‐derived intermediates, synchronizing their reduction kinetics for efficient C–N coupling. Under AM 1.5 G illumination, the optimized Si/1Pd–3Cu photocathode delivers urea with a remarkable faradaic efficiency up to ≈100% at 0 V vs. RHE, achieving an initial urea partial current density of 1.06 mA·cm −2 . Operando spectroscopies combined with theoretical calculations identify a Pd‐rich governed, low‐barrier C–N coupling pathway operating near the thermodynamic potential. Further integration into photovoltaic photoelectrochemical devices enables light‐driven spontaneous urea synthesis without external bias. This work establishes segregation‐programmed polarization in semiconductor/metal junctions as a powerful, general materials‐design principle for mild and selective multielectron synthesis.
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