合金
材料科学
催化作用
氧还原反应
单层
纳米颗粒
化学工程
吸附
密度泛函理论
电子转移
电化学
纳米技术
电极
化学
物理化学
冶金
计算化学
工程类
生物化学
作者
Haoxiong Nan,Yaqiong Su,Cheng Tang,Rui Cao,Dong Li,Jia Yu,Quanbing Liu,Yijie Deng,Xinlong Tian
标识
DOI:10.1016/j.scib.2020.04.015
摘要
Alloyed nanoparticles with core-shell structures provide a favorable model to modulate interfacial interaction and surface structures at the atomic level, which is important for designing electrocatalysts with high activity and durability. Herein, core-shell structured Pd3 [email protected] /C nanoparticles with binary PdM alloy cores (M = Fe, Ni, and Co) and a monolayer Pt shell were successfully synthesized with diverse interfaces. Among these, Pd3 [email protected] /C exhibited the best oxygen reduction reaction catalytic performance, roughly 5.4 times more than that of the commercial Pt/C catalyst used as reference. The significantly enhanced activity is attributed to the combined effects of strain engineering, interfacial electron transfer, and improved Pt utilization. Density functional theory simulations and extended X-ray absorption fine structure analysis revealed that engineering the alloy core with moderate lattice mismatch and alloy composition (Pd3Fe) optimizes the surface oxygen adsorption energy, thereby rendering excellent electrocatalytic activity. Future researches may use this study as a guide on the construction of highly effective core-shell electrocatalysts for various energy conversions and other applications.
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