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通过改变插层阴离子可控调制层状双氢氧化物纳米片的缺陷以实现高效电氧化催化

Controllable Modulation of Defects for Layered Double Hydroxide Nanosheets by Altering Intercalation Anions for Efficient Electrooxidation Catalysis.

作者信息

Lai Tianyi, Wang Jikang, Sun Xiaoliang, Zhao Yufei, Song Yu-Fei

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.

出版信息

Chem Asian J. 2021 Dec 1;16(23):3993-3998. doi: 10.1002/asia.202101084. Epub 2021 Oct 29.

Abstract

Hydrazine (N H ) is considered as one of the most potential energy storage materials in liquid fuel cells, as it contains high energy and power density, and the high-efficiency oxidation of N H in fuel cells has drawn great attention. However, the most used catalysts are expensive noble metal catalysts, thus the development of highly efficient non-noble metal catalysts is crucial to reduce the cost of hydrazine oxidation in practical industry. Herein, we synthesized a series of CoFe-layered double hydroxides (CoFe-LDHs) intercalated with different anions via a simple one-step co-precipitation method for the electrooxidation of hydrazine. Through altering the intercalated anions of CoFe-LDHs, the defects and the electronic structure can be well controlled, and the catalytic performance for the electrooxidation of hydrazine were well promoted by using NO intercalated into CoFe-LDH compared with other anions (like Cl , BO , CO ). This work developed a series of hydrazine electrooxidation catalysts and established the relationship between the intercalated anions, the fine structure of the catalyst and the electrocatalytic performance.

摘要

肼(N₂H₄)被认为是液体燃料电池中最具潜力的储能材料之一,因为它具有高能量和功率密度,并且燃料电池中N₂H₄的高效氧化受到了极大关注。然而,最常用的催化剂是昂贵的贵金属催化剂,因此开发高效的非贵金属催化剂对于降低实际工业中肼氧化的成本至关重要。在此,我们通过简单的一步共沉淀法合成了一系列插层有不同阴离子的CoFe层状双氢氧化物(CoFe-LDHs)用于肼的电氧化。通过改变CoFe-LDHs的插层阴离子,可以很好地控制缺陷和电子结构,与其他阴离子(如Cl⁻、BO₃³⁻、CO₃²⁻)相比,使用插层有NO₃⁻的CoFe-LDH对肼电氧化的催化性能得到了很好的提升。这项工作开发了一系列肼电氧化催化剂,并建立了插层阴离子、催化剂精细结构与电催化性能之间的关系。

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