利用自适应电化学调节策略实现稳定的超薄锂金属负极

Si-Yuan Zeng, Wen-Long Wang, Deyuan Li, Chunpeng Yang, Zijian Zheng
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引用次数: 0

摘要

容量可控的超薄锂(Li)金属箔可实现高特异性能量电池;然而,金属锂箔因其极端的体积变化而粉化,导致活性锂快速流失和容量衰减。在此,我们报告了一种在循环过程中通过将锂从超薄锂箔原位转移到精心设计的三维梯度宿主中来稳定超薄锂金属阳极的策略。在超薄锂箔上预先放置了银纳米粒子梯度分布的三维碳纤维,该碳纤维可作为锂储层,引导锂沉积到其内部,从而缓解超薄锂箔阳极的体积变化。因此,实现了锂金属的高可逆性,并抑制了锂的粉化,这一点可以从对称电池的长循环寿命中得到证明。所提出的方法为保护超薄锂金属阳极提供了一种通用而简便的方法,这将促进其商业应用进程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stable ultrathin lithium metal anode enabled by self-adapting electrochemical regulating strategy
Ultrathin lithium (Li) metal foils with controllable capacity could realize high-specific-energy batteries; however, the pulverization of Li metal foils due to its extreme volume change results in rapid active Li loss and capacity fading. Here, we report a strategy to stabilize ultrathin Li metal anode via in-situ transferring Li from ultrathin Li foil into a well-designed three-dimensional gradient host during a cycling process. A three-dimensional carbon fiber with gradient distribution of Ag nanoparticles is placed on the ultrathin Li foil in advance and acts as a Li reservoir, guiding Li deposition into its interior and thus alleviating the volume change of ultrathin Li foil anodes. Hence, a high reversibility of Li metal is achieved and Li pulverization is suppressed, which can be witnessed by a long cyclic life in the symmetric cells. The proposed method offers a versatile and facile approach for protecting ultrathin Li metal anodes, which will boost their commercial application process.
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