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用于高性能锂硫电池的光诱导动态催化域

Photo-Induced Dynamic Catalytic Domains for High-Performance Lithium-Sulfur Batteries.

作者信息

Liu Yuhao, Hu Zhengqiang, Wu Feng, Li Li, Chen Renjie

机构信息

Beijing Key Laboratory of Environmental Science and Engineering, School of Materials, Science and Engineering, Beijing Institute of Technology, Beijing, 100081, China.

Shandong Key Laboratory of Advanced Chemical Energy Storage and Intelligent Safety, Advanced Technology Research Institute, Beijing Institute of Technology, Jinan, 250300, China.

出版信息

Adv Mater. 2025 Jun 26:e2506839. doi: 10.1002/adma.202506839.

Abstract

Lithium-sulfur batteries (LSBs) face significant challenges due to sluggish reaction kinetics and the polysulfide shuttle effect. Here, a light-induced anchoring strategy is employed to construct Co/Cu diatomic catalysts (DACs) on CN, introducing dual active sites with strong polysulfide adsorption and bifunctional catalytic activity. Upon light excitation, the synergistic Co-Cu interaction induces local electronic redistribution, which triggers broader electronic rearrangement and directional charge carrier migration. This process generates dynamic catalytic domains with enhanced polysulfide adsorption and catalytic conversion capability. These domains not only promote effective photogenerated carrier separation but also play a pivotal role in accelerating sulfur redox kinetics and regulating Li₂S deposition behavior. As a result, the Co/Cu-C₃N₄ cathode exhibits exceptional electrochemical performance, achieving 1200 stable cycles at 8 C with a capacity decay of 0.025% per cycle. Remarkably, under lean electrolyte conditions (E/S = 4 µL mg⁻¹) and ultra-high sulfur loading (14.73 mg cm⁻), the battery maintains excellent cycling stability. This work offers a conceptual framework for photo-induced catalytic microenvironment design and highlights the potential of spatiotemporal electronic modulation for next-generation photo-assisted energy storage systems.

摘要

锂硫电池(LSBs)由于反应动力学迟缓以及多硫化物穿梭效应而面临重大挑战。在此,采用光诱导锚定策略在CN上构建Co/Cu双原子催化剂(DACs),引入具有强多硫化物吸附和双功能催化活性的双活性位点。在光激发下,协同的Co-Cu相互作用诱导局部电子重新分布,进而引发更广泛的电子重排和定向电荷载流子迁移。这一过程产生了具有增强的多硫化物吸附和催化转化能力的动态催化域。这些域不仅促进了有效的光生载流子分离,还在加速硫氧化还原动力学和调节Li₂S沉积行为方面发挥了关键作用。结果,Co/Cu-C₃N₄正极表现出优异的电化学性能,在8 C下实现了1200次稳定循环,每次循环的容量衰减为0.025%。值得注意的是,在贫电解质条件(E/S = 4 µL mg⁻¹)和超高硫负载(14.73 mg cm⁻)下,该电池仍保持出色的循环稳定性。这项工作为光诱导催化微环境设计提供了一个概念框架,并突出了时空电子调制在下一代光辅助储能系统中的潜力。

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