Rationally optimized carbon fiber cloth as lithiophilic host for highly stable Li metal anodes

材料科学 阳极 成核 电极 纤维 锂(药物) 化学工程 剥离(纤维) 金属 纳米技术 碳纤维 复合材料 冶金 医学 有机化学 内分泌学 化学 物理化学 复合数 工程类
作者
Jianjin Cao,Yonghui Xie,Wangyang Li,Xinghui Wang,Yan Yang,Qi Zhang,Jie Guo,Chengkai Yang,Shuying Cheng,Chengqian Zhang,Kewei Wang
出处
期刊:Materials Today Energy [Elsevier]
卷期号:20: 100663-100663 被引量:39
标识
DOI:10.1016/j.mtener.2021.100663
摘要

The practical application of lithium (Li) metal anode has been greatly hampered by irregular growth of Li dendrites and the volume expansion during the cycle. Constructing a three-dimensional lithiophilic porous framework is regarded as an effective solution. Here, using a CuO nanocluster arrays–decorated carbon fiber cloth (CuO-NC@CFC) to prestore Li via molten infusion has been testified to effectively resolve these bottlenecks. Impressively, after a violent melt-infusion process, the constructed nanostructures can be maintained and transformed into Cu/Li 2 O nanocluster arrays, together with highly conductive carbon fiber cloth, provide fast charge transport during Li stripping/plating process. As demonstrated by finite element simulations and experimental evidence, the formed Cu/Li 2 O nanocluster arrays not only redistribute Li + flux and reduce local current density but also serve as Li nucleation sites. Consequently, the as-acquired Li/Cu-NC@CFC electrodes could significantly buffer volume fluctuation and regulate Li deposition behavior, exhibiting an ultrastable and ultralong lifespan (400 h at 5 mA/cm 2 with 1 mAh/cm 2 Li and 800 h at 5 mA/cm 2 with 5 mAh/cm 2 Li in symmetric cells). When coupled with LiFePO 4 , the Li/Cu-NC@CFC electrode could deliver a high capacity of 110.3 mAh/g after 500 cycles at 2 C. • The Li/Cu-NC@CFC electrode was prepared via a facile molten lithium infusion strategy. • The Cu/Li 2 O nanocluster arrays reduce local current density and regulate Li + flux. • The carbon fiber cloth alleviates the volume change and ensures a fast charge transfer kinetics. • The Li/Cu-NC@CFC electrodes exhibit impressive performance in cycling tests.
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