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Diffusion couples Cu-X (X=Sn, Zn, Al) derived 3D porous current collector for dendrite-free lithium metal battery

机译:扩散耦合Cu-X(X = Sn,Zn,Al)衍生的3D多孔集电器,用于无枝晶锂金属电池

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摘要

Lithium (Li) metal is one of the most promising anode for rechargeable batteries. However, Li dendrite growth during plating/stripping process leads to many subsequent damages, such as low Coulombic efficiency, large volume change and short circuit, which can inhibit its practical application. To suppress Li dendrite, great efforts have been focused on the current collector of Li metal battery. Herein, a facile method utilizing diffusion couples Cu-X and kirkendall effect is developed to obtain 3D porous Cu current collector for Li metal anodes. The 3D current collector has interconnected pores throughout the Cu foil, which can reduce current density, provide "cages" for dendrite and enhance structural stability. As a result, Li dendrite growth is largely suppressed, giving rise to the improvement in electrochemical performances: high Coulombic efficiency even after 200 cycles, long life span of more than 2000 h, good cycling performance in full cells, etc. Moreover, the diffusion method overcome the energy/time-comsuming disadvantages of other methods for preparing porous current collectors, so it can be generalized to other synthesis of porous metal foils as a easy, sustainable and universal method. The 3D porous current collector will promote the commercialization of high-energy Li metal batteries.
机译:锂(Li)金属是可充电电池最有希望的阳极之一。然而,锂枝晶在电镀/剥离过程中的生长会导致许多后续的损害,例如库仑效率低,体积变化大和短路,这会阻碍其实际应用。为了抑制锂枝晶,已经集中精力在锂金属电池的集电器上。在此,开发了一种利用扩散耦合Cu-X和基尔肯德尔效应的简便方法以获得用于Li金属阳极的3D多孔Cu集电器。 3D集电器在整个Cu箔上具有相互连接的孔,可以降低电流密度,为枝晶提供“笼”并增强结构稳定性。结果,锂枝晶的生长得到了极大的抑制,从而改善了电化学性能:即使经过200次循环仍具有很高的库仑效率,超过2000小时的长寿命,在全电池中的良好循环性能等。此外,扩散该方法克服了制备多孔集电器的其他方法的耗能/耗时的缺点,因此可以作为一种简便,可持续且通用的方法推广到多孔金属箔的其他合成中。 3D多孔集电器将促进高能锂金属电池的商业化。

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