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理解负载金纳米粒子的共价三嗪框架用于氮还原制氨的电子结构

Understanding electron structure of covalent triazine framework embraced with gold nanoparticles for nitrogen reduction to ammonia.

作者信息

Guo Chuanpan, Xu Mingyang, Tao Zheng, Liu Jiameng, Zhang Shuai, He Linghao, Du Miao, Zhang Zhihong

机构信息

College of Material and Chemical Engineering, Institute of New Energy Science and Technology, School of Future Hydrogen Energy Technology, Zhengzhou University of Light Industry, Zhengzhou 450001, PR China.

College of Material and Chemical Engineering, Institute of New Energy Science and Technology, School of Future Hydrogen Energy Technology, Zhengzhou University of Light Industry, Zhengzhou 450001, PR China.

出版信息

J Colloid Interface Sci. 2024 Dec;675:369-378. doi: 10.1016/j.jcis.2024.07.020. Epub 2024 Jul 4.

Abstract

Regulating the electron structure and precise loading sites of metal-active sites within the highly conjugated and porous covalent-triazine frameworks (CTFs) is essential to promoting the nitrogen reduction reaction (NRR) performance for electrocatalytic ammonia (NH) synthesis under ambient conditions. Herein, experimental method and density functional theory (DFT) calculations were conducted to deeply probe the effect on NRR of the modulation of modulating the electron structure and the loading site of gold nanoparticles (Au NPs) in a two-dimensional (2D) CTF. 2D CTF synthesized using melem and hexaketocyclohexane octahydrate as building blocks (denoted as M-HCO-CTF) served as a robust scaffold for loading Au NPs to form an M-HCO-CTF@AuNP hybrid. DFT results uncovered that well-defined Au sites with tunable local structure were the active site for driving the NRR, which can significantly suppress the conversion of H into *H adsorption and enhance the nitrogen (N) adsorption/activation. The overlapped Au (3d) and *N (2p) orbitals lowered the free energy of the rate-determining step to form *NNH, thereby accelerating the NRR. The M-HCO-CTF@AuNPs electrocatalyst exhibited a large NH yield rate of 66.3 μg h mg and a high Faraday efficiency of 31.4 % at - 0.2 V versus reversible hydrogen electrode in 0.1 M HCl, superior to most reported CTF-based ones. This work can provide deep insights into the modulation of the electron structure of metal atoms within a porous organic framework for artificial NH synthesis through NRR.

摘要

在高度共轭且多孔的共价三嗪框架(CTF)内调节金属活性位点的电子结构和精确负载位点,对于促进在环境条件下电催化合成氨(NH₃)的氮还原反应(NRR)性能至关重要。在此,通过实验方法和密度泛函理论(DFT)计算,深入探究了二维(2D)CTF中调节金纳米颗粒(Au NPs)的电子结构和负载位点对NRR的影响。以三聚氰胺和八水合六酮环己烷为结构单元合成的2D CTF(表示为M-HCO-CTF)作为负载Au NPs的坚固支架,形成了M-HCO-CTF@AuNP杂化物。DFT结果表明,具有可调节局部结构的明确Au位点是驱动NRR的活性位点,可显著抑制H₂转化为H吸附,并增强氮(N₂)的吸附/活化。重叠的Au(3d)和N(2p)轨道降低了形成*NNH的速率决定步骤的自由能,从而加速了NRR。在0.1 M HCl中,相对于可逆氢电极,M-HCO-CTF@AuNPs电催化剂在-0.2 V时表现出66.3 μg h⁻¹ mg⁻¹的高NH₃产率和31.4%的高法拉第效率,优于大多数已报道的基于CTF的催化剂。这项工作可为通过NRR人工合成NH₃的多孔有机框架内金属原子电子结构的调节提供深入见解。

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