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将环链耦合经验定律扩展至锂介导的电化学合成氨反应。

Extending Ring-Chain Coupling Empirical Law to Lithium-Mediated Electrochemical Ammonia Synthesis.

作者信息

Li Ya, Wang Zhenkang, Ji Haoqing, Wang Mengfan, Qian Tao, Yan Chenglin, Lu Jianmei

机构信息

Collaborative Innovation Center of Suzhou Nano Science and Technology, College of Chemistry Chemical Engineering and Materials Science, Soochow University, 199 Ren'ai Road, Suzhou, 215123, P. R. China.

Key Laboratory of Core Technology of High Specific Energy Battery and Key Materials for Petroleum and Chemical Industry, College of Energy, Soochow University, Suzhou, Jiangsu, 215006, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2024 Jan 8;63(2):e202311413. doi: 10.1002/anie.202311413. Epub 2023 Dec 7.

Abstract

With its efficient nitrogen fixation kinetics, electrochemical lithium-mediated nitrogen reduction reaction (LMNRR) holds promise for replacing Haber-Bosch process and realizing sustainable and green ammonia production. However, the general interface problem in lithium electrochemistry seriously impedes the further enhancement of LMNRR performance. Inspired by the development history of lithium battery electrolytes, here, we extend the ring-chain solvents coupling law to LMNRR system to rationally optimize the interface during the reaction process, achieving nearly a two-fold Faradaic efficiency up to 54.78±1.60 %. Systematic theoretical simulations and experimental analysis jointly decipher that the anion-rich Li solvation structure derived from ring tetrahydrofuran coupling with chain ether successfully suppresses the excessive passivation of electrolyte decomposition at the reaction interface, thus promoting the mass transfer of active species and enhancing the nitrogen fixation kinetics. This work offers a progressive insight into the electrolyte design of LMNRR system.

摘要

凭借其高效的固氮动力学,电化学锂介导的氮还原反应(LMNRR)有望取代哈伯-博施工艺,实现可持续的绿色氨生产。然而,锂电化学中普遍存在的界面问题严重阻碍了LMNRR性能的进一步提高。受锂电池电解质发展历史的启发,在此,我们将环链溶剂耦合规律扩展到LMNRR体系,以合理优化反应过程中的界面,实现了近两倍的法拉第效率,高达54.78±1.60%。系统的理论模拟和实验分析共同表明,由环四氢呋喃与链醚耦合产生的富阴离子锂溶剂化结构成功抑制了反应界面处电解质分解的过度钝化,从而促进了活性物种的传质并增强了固氮动力学。这项工作为LMNRR体系的电解质设计提供了渐进式的见解。

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