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Surface Functionalization of a Conventional Polypropylene Separator with an Aluminum Nitride Layer toward Ultrastable and High-Rate Lithium Metal Anodes

机译:常规聚丙烯分离器用氮化铝层朝向超速度和高速锂金属阳极的表面官能化

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摘要

Lithium (Li) metal as a next-generation anode has received great interest from industry and academic institutes due to its attractive benefits of a high theoretical capacity (3860 mAh g(-1)) and the lowest negative potential (-3.04 V vs SHE) among the anode candidates. However, major issues associated with dendritic Li growth, infinite volume expansion of Li, and low Coulombic efficiency cause severely degraded cycle stabilities and fatal safety issues (such as short-circuit). Herein, we first designed a functional membrane, comprising an aluminum nitride (AlN) layer and a polypropylene (PP) separator, in order to curb the sharp Li dendrite growth, restrain the propagation of dendritic Li toward the PP separator, and consequently improve the electrochemical stabilities of Li metal batteries. When the designed membrane was introduced in either the Li/Cu half-cell or the Li/LCO full-cell, Li dendrite growth was significantly suppressed and side reactions associated with electrode degradation was effectively prevented by the material benefits of the AlN layer, thus leading to the significantly enhanced cycle performances. Low temperature stability tests further demonstrated the optimiztic potentiality of the designed membrane for enabling the stable operation of Li metal batteries under harsh conditions. Our approach of adopting a metal nitride layer to the PP separator can be a compelling strategy to improve the long-term electrochemical stability of the Li metal electrode.
机译:锂(李)金属作为下一代阳极,由于其具有高理论能力的有吸引力(3860 Mah G(-1))和最低负势(-3.04 v vs她)在阳极候选人中。然而,与树突锂生长,无限量扩张的主要问题,LI,低库仑效率,导致循环稳定性和致命的安全问题(如短路)引起严重降级。在此,首先设计了一种功能性膜,包括氮化铝(ALN)层和聚丙烯(PP)分离器,以抑制树枝状Li朝向PP分离器的繁殖,因此改善了Li金属电池的电化学稳定性。当在Li / Cu半电池或Li / LCO全细胞中引入设计的膜时,Li Dendrite生长被显着抑制,并且通过ALN层的材料益处有效地防止与电极劣化相关的副反应,因此导致显着增强的循环表演。低温稳定性试验进一步证明了设计膜的优化潜力,以使Li金属电池在恶劣条件下稳定运行。我们对PP分离器采用金属氮化物层的方法可以是令人焦虑的策略,以改善Li金属电极的长期电化学稳定性。

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