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Unconventional Synthesis of Hierarchically Twinned Copper as Efficient Electrocatalyst for Nitrate-Ammonia Conversion.

Qi HuQihua HuoShuai QiXin DengJiapeng ZhuangJiaying YuXuan LiWeiliang ZhouMiaoyuan LvXinbao ChenXiaodeng WangChao FengHengpan YangChuan-Xin He
Published in: Advanced materials (Deerfield Beach, Fla.) (2023)
Twin boundary (TB) engineering provides exciting opportunities to tune the performance levels of metal-based electrocatalysts. However, the controllable construction of TB greatly relies on surfactants, blocking active sites and electron transfer by surfactants. Here, we propose a surfactant-free and facile strategy for synthesizing copper (Cu) nanocatalysts with dense hierarchical TB networks (HTBs) by the rapid thermal reductions in metastable CuO nanosheets in H 2 . As revealed by in situ transmission electron microscopy (TEM), the formation of HTBs is associated with the fragmentation of nanosheets in different directions to generate abundant crystal nuclei and subsequently unconventional crystal growth through the collision and coalescence of nuclei. Impressively, the HTBs endow Cu with excellent electrocatalytic performance for direct nitrate-ammonia conversion, superior to that of Cu with a single-oriented TB and without TB. We discover that the HTBs induce the formation of compressive strains, thereby creating a synergistic effect of TBs and strains to efficiently tune the binding energies of Cu with nitrogen intermediates (i.e., NO 2 *) and thus promote the tandem reaction process of NO 3 - -to-NO 2 - and subsequent NO 2 - -to-NH 3 electrocatalysis. This work demonstrates the crucial role of HTBs for boosting electrocatalysis via the synergistic effect of TBs and strains. This article is protected by copyright. All rights reserved.
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