Bo Yu*, Long Chen, Luo Fei, Xiaolong Wang, Junchen Chen, Mingshan Wang, Zhiyuan Ma, Liujiang Zhou, Yun Huang, Bingshu Guo* and Xing Li,
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引用次数: 0
摘要
锂金属阳极具有极高的理论比容量,是推进高能量密度锂二次电池的关键。然而,锂枝晶的不受控制的生长可能会穿透隔膜,从而限制了锂金属阳极的实际应用。在这项工作中,我们报告了一种改性的商用PP分离器,通过加入由Ni2P纳米颗粒组成的亲锂中间层,该中间层由氮掺杂碳纳米管包裹。Ni2P@NCNT功能化隔膜具有较高的锂离子电导率和增强的电解质润湿性,从而改善锂离子(Li+)的运输,促进锂的均匀沉积,抑制枝晶生长。此外,DFT计算揭示了锂原子与Ni2P@NCNT之间更强的相互作用,提供了能量有利的沉积位点,并导致均匀,致密的锂镀层。含有Ni2P@NCNT/PP的Li||Cu电池在0.5 mA cm-2的电流密度下可以稳定循环超过300次。同时,Li||Li对称电池在0.5 mA cm-2下可延长1500小时的使用寿命。此外,LFP||锂电池在0.5 C下每循环的容量降解率极低,为0.07%,具有良好的循环性能。本研究提出了一种设计功能性亲锂中间层的新方法,为有效缓解锂金属电池中锂枝晶的形成提供了新的视角。
Lithiophilic Ni2P@NCNT Interlayer for Uniform Li-Ion Flux and Stable Lithium Metal Batteries
Lithium metal anodes are critical for advancing high-energy-density lithium secondary batteries due to their exceptionally high theoretical specific capacity. However, the uncontrolled growth of lithium dendrites may penetrate the separator, thereby limiting the practical application of lithium metal anodes. In this work, we report a modified commercial PP separator by incorporating a lithiophilic interlayer composed of Ni2P nanoparticles wrapped with nitrogen-doped carbon nanotubes. The Ni2P@NCNT functionalized separators exhibit high lithium-ion conductivity and enhanced electrolyte wettability, which improve lithium-ion (Li+) transport, promote uniform lithium deposition, and inhibit dendritic growth. Furthermore, DFT calculations reveal a stronger interaction between Li atoms and Ni2P@NCNT, providing energetically favorable deposition sites and leading to uniform, compact Li plating. The Li||Cu cell incorporating Ni2P@NCNT/PP demonstrates stable cycling over 300 cycles at a current density of 0.5 mA cm–2. Meanwhile, the Li||Li symmetric cell achieves an extended operational lifespan of 1500 h under 0.5 mA cm–2. Additionally, the LFP||Li cell demonstrates an extremely low capacity degradation rate of 0.07% per cycle at 0.5 C, showing promising cycling performance. This study introduces a novel approach for designing functional lithiophilic interlayers, providing new perspectives on effectively mitigating Li dendrite formation in lithium metal batteries.
期刊介绍:
ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.