Zheng Kaiyang, Gou Zhengyang, Zhang Cen, Zhang Yuqiang, Dou Yaying, Liu Shaojie, Zhang Yongheng, Zhang Yantao
College of Chemistry and Pharmaceutical Engineering, Hebei University of Science and Technology Shijiazhuang 050018 China
Interdisciplinary Research Center for Sustainable Energy Science and Engineering (IRC4SE2), School of Chemical Engineering, Zhengzhou University Zhengzhou 450001 China.
Chem Sci. 2024 Oct 17;15(45):19160-7. doi: 10.1039/d4sc05297h.
To gain a deeper understanding and address the scientific challenges of lithium dendrite growth, a robust solid-state electrolyte interface (SEI) with good mechanical properties and rapid ion conduction is crucial for the advancement of lithium metal batteries. Artificial SEI layers based on organic polymers, such as covalent organic frameworks (COF), have garnered widespread attention due to their flexible structural design and tunable functionality. In this work, a COF with 3D spatial geometric symmetry and a fully covalent topology was synthesized and used as artificial SEI layers. A combination of comprehensive DFT calculations and / characterizations have unraveled the impact of interpenetrated chain segments and anchoring lithiophilic groups on the microscopic dynamics related to Li ion desolvation, charge transfer, migration pathways, and deposition morphology. The ultralow polarization voltage of 46 mV for 9400 hours with a symmetric Li|Li cell at a harsh current density of 10 mA cm, as well as the high Li utilization, low polarization voltage, and prolonged lifespan for 3D-COF-modified Li|S and Li|LFP full cells, unambiguously corroborate the interphase reliability. This work also aims to shed new light on the use of multi-dimensional porous polymer SEI layers to revive highly stable Li metal batteries.
为了更深入地理解并应对锂枝晶生长的科学挑战,具有良好机械性能和快速离子传导能力的坚固固态电解质界面(SEI)对于锂金属电池的发展至关重要。基于有机聚合物的人工SEI层,如共价有机框架(COF),因其灵活的结构设计和可调节的功能而受到广泛关注。在这项工作中,合成了一种具有三维空间几何对称性和完全共价拓扑结构的COF,并将其用作人工SEI层。综合密度泛函理论(DFT)计算和表征相结合,揭示了互穿链段和亲锂锚定基团对与锂离子去溶剂化、电荷转移、迁移路径和沉积形态相关的微观动力学的影响。在10 mA cm的苛刻电流密度下,对称Li|Li电池在9400小时内具有46 mV的超低极化电压,以及3D-COF修饰的Li|S和Li|LFP全电池的高锂利用率、低极化电压和延长的寿命,明确证实了界面的可靠性。这项工作还旨在为使用多维多孔聚合物SEI层来重振高度稳定的锂金属电池提供新见解。