Amorphous Nanobelts for Efficient Electrocatalytic Ammonia Production

Ziming Su, Xiangyu Chen, Mingke Sun, Dr. Xiuyi Yang, Prof. Jianxin Kang, Dr. Zhi Cai, Prof. Lin Guo
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Abstract

One-dimensional (1D) amorphous nanomaterials combine the advantages of high active site concentration of amorphous structure, high specific surface area and efficient charge transfer of 1D materials, so they present promising opportunities for catalysis. However, how to achievie the balance between the high orientation of 1D morphology and the isotropy of amorphous structure is a significant challenge, which severely obstructs the controllable preparation of 1D amorphous materials. Guided by the hard-soft acids-bases theory, here we develop a general strategy for preparing 1D amorphous nanomaterials through the precise modulation of bond strength between metal ions and organic ligands for a moderated fastness. The soft base dodecanethiol (DT) is multifunctionally served as both structure-regulating agent and morphology-directing agent. Compared with the borderline acids (e.g. Fe2+, Co2+, Ni2+) to construct amorphous structure, soft acid of Cu+ which produced crystalline nanobelts can still be amorphized by reducing the hardness of Cu ions through redox reaction to weak Cu−SR bond. Due to the combined advantages of amorphous structure and one-dimensional morphology, amorphous CuDT nanobelts exhibited excellent electrocatalytic activity in electrochemical nitrate reduction, outperformed most of the reported Cu-based catalysts. This work will effectively bridge the gap between traditional 1D crystalline nanomaterials synthesis and their amorphization preparation.

Abstract Image

用于高效电催化制氨的非晶纳米带
一维(1D)非晶态纳米材料结合了非晶态结构活性位点浓度高、比表面积大、电荷转移效率高等优点,为催化研究提供了广阔的前景。然而,如何在一维形貌的高取向性和非晶结构的各向同性之间取得平衡是一个重大挑战,严重阻碍了一维非晶材料的可控制备。在硬-软酸-碱理论的指导下,我们通过精确调节金属离子与有机配体之间的键强度来制备一维非晶纳米材料,以获得适度的牢度。软碱十二硫醇(DT)是一种多功能的结构调节剂和形态调节剂。与边缘酸(如Fe2+、Co2+、Ni2+)形成非晶态结构相比,软酸Cu+通过弱Cu−SR键的氧化还原反应降低Cu离子的硬度,仍能形成非晶态纳米带。由于无定形结构和一维形貌的综合优势,无定形CuDT纳米带在电化学硝酸还原中表现出优异的电催化活性,优于大多数已报道的cu基催化剂。这项工作将有效地弥补传统一维晶体纳米材料合成与非晶化制备之间的差距。
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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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