电催化剂
法拉第效率
氨生产
可逆氢电极
催化作用
电化学
电解
化学工程
选择性
氧化还原
氨
纳米颗粒
本体电解
无机化学
钯
材料科学
组合化学
化学
纳米技术
电极
物理化学
有机化学
循环伏安法
工作电极
工程类
电解质
作者
Wu Tong,Bolong Huang,Pengtang Wang,Leigang Li,Qi Shao,Bolong Huang
标识
DOI:10.1002/anie.201913122
摘要
Crystal phase engineering is a powerful strategy for regulating the performance of electrocatalysts towards many electrocatalytic reactions, while its impact on the nitrogen electroreduction has been largely unexplored. Herein, we demonstrate that structurally ordered body-centered cubic (BCC) PdCu nanoparticles can be adopted as active, selective, and stable electrocatalysts for ammonia synthesis. Specifically, the BCC PdCu exhibits excellent activity with a high NH3 yield of 35.7 μg h-1 mg-1cat , Faradaic efficiency of 11.5 %, and high selectivity (no N2 H4 is detected) at -0.1 V versus reversible hydrogen electrode, outperforming its counterpart, face-centered cubic (FCC) PdCu, and most reported nitrogen reduction reaction (NRR) electrocatalysts. It also exhibits durable stability for consecutive electrolysis for five cycles. Density functional theory calculation reveals that strong orbital interactions between Pd and neighboring Cu sites in BCC PdCu obtained by structure engineering induces an evident correlation effect for boosting up the Pd 4d electronic activities for efficient NRR catalysis. Our findings open up a new avenue for designing active and stable electrocatalysts towards NRR.
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