格式化
催化作用
电催化剂
氢化物
化学
可逆氢电极
纳米颗粒
氢化钯
无机化学
衰减全反射
红外光谱学
贵金属
光化学
氢
钯
材料科学
电化学
电极
物理化学
纳米技术
有机化学
工作电极
作者
Dunfeng Gao,Hu Zhou,Fan Cai,Dongniu Wang,Yongfeng Hu,Bei Jiang,Wen–Bin Cai,Xiaoqi Chen,Rui Si,Fan Yang,Shu Miao,Jianguo Wang,Guoxiong Wang,Xinhe Bao
出处
期刊:Nano Research
[Springer Science+Business Media]
日期:2017-04-04
卷期号:10 (6): 2181-2191
被引量:274
标识
DOI:10.1007/s12274-017-1514-6
摘要
Active-phase engineering is regularly utilized to tune the selectivity of metal nanoparticles (NPs) in heterogeneous catalysis. However, the lack of understanding of the active phase in electrocatalysis has hampered the development of efficient catalysts for CO2 electroreduction. Herein, we report the systematic engineering of active phases of Pd NPs, which are exploited to select reaction pathways for CO2 electroreduction. In situ X-ray absorption spectroscopy, in situ attenuated total reflection-infrared spectroscopy, and density functional theory calculations suggest that the formation of a hydrogen-adsorbed Pd surface on a mixture of the α- and β-phases of a palladium-hydride core (α+β PdH x @PdH x ) above −0.2 V (vs. a reversible hydrogen electrode) facilitates formate production via the HCOO* intermediate, whereas the formation of a metallic Pd surface on the β-phase Pd hydride core (β PdH x @Pd) below −0.5 V promotes CO production via the COOH* intermediate. The main product, which is either formate or CO, can be selectively produced with high Faradaic efficiencies (>90%) and mass activities in the potential window of 0.05 to −0.9 V with scalable application demonstration.
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