材料科学
动能
电场
下降(电信)
电位
势能
电压降
内能
再分配(选举)
离子
铝
势场
储能
腐蚀
吸附
金属
电势能
锂(药物)
离解(化学)
电流密度
级联
纳米技术
内氧化
化学工程
化学物理
矩形势垒
准静态过程
电极
电化学电位
热力学
作者
H C Chen,Tong Wu,Yue Wang,Xiaozhong Fan,Jin‐Hao Zhang,Pan Xu,Yun‐Ji Chen,Long Kong
摘要
ABSTRACT High‐voltage lithium‐metal batteries are pivotal for increasing energy density but suffer from aluminum (Al) current collector corrosion. While the native Al 2 O 3 layer provides thermodynamic stability, corrosion persists through electric‐field‐driven Al 3+ migration. Guided by P. Marcus theory, we identify that the total potential drop across the Al/Al 2 O 3 /electrolyte system is partitioned between two distinct interfaces, where the internal Al/Al 2 O 3 potential drop generates a localized electric field that serves as the fundamental kinetic driver for Al 3+ egress. Departing from conventional strategies focused on anion‐induced chemical passivation, we establish an interfacial potential modulation framework and report a cascade effect where intensifying specific anion adsorption at the external Al 2 O 3 /electrolyte interface increases the external potential drop, which inherently reduces the internal potential drop. This potential redistribution weakens the internal electric field and elevates the energy barrier for outward Al 3+ transport. By introducing NO 3 − as an electric‐field‐responsive anion to optimize this distribution, we enable Li||NCM811 cells to maintain stable capacity at 4.5 V for over 180 cycles. These findings establish a versatile theoretical framework for stabilizing multiphase interfaces in high‐voltage energy storage systems.
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