Singla Aditya, Naik Kaustubh G, Vishnugopi Bairav S, Mukherjee Partha P
School of Mechanical Engineering, Purdue University, West Lafayette, IN, 47907, USA.
Adv Sci (Weinh). 2024 Sep;11(36):e2404887. doi: 10.1002/advs.202404887. Epub 2024 Jul 30.
Sodium (Na) metal batteries have attracted recent attention due to their low cost and high abundance of Na. However, the advancement of Na metal batteries is impeded due to key challenges such as dendrite growth, solid electrolyte interphase (SEI) fracture, and low Coulombic efficiency. This study examines the coupled electro-chemo-mechanical interactions governing the electrodeposition stability and morphological evolution at the Na/electrolyte interface. The SEI heterogeneities influence transport and reaction kinetics leading to the formation of current and stress hotspots during Na plating. Further, it is demonstrated that the heterogeneity-induced Na metal evolution and its influence on the stress distribution critically affect the mechanical overpotential, contributing to a faster SEI failure. The analysis reveals three distinct failure mechanisms-mechanical, transport, and kinetic-that govern the onset of instabilities at the interface. Finally, a comprehensive comparative study of SEI failure in Na and lithium (Li) metal anodes illustrates that the electrochemical and mechanical characteristics of the SEI are crucial in tailoring the anode morphology and interface stability. This work delineates mechanistic stability regimes cognizant of the SEI attributes and underlying failure modes and offers important guidelines for the design of artificial SEI layers for stable Na metal electrodes.
钠(Na)金属电池因其低成本和钠资源的高丰度而受到了近期的关注。然而,钠金属电池的发展受到枝晶生长、固体电解质界面(SEI)破裂和低库仑效率等关键挑战的阻碍。本研究考察了在钠/电解质界面处控制电沉积稳定性和形态演变的耦合电化学-化学-力学相互作用。SEI的不均匀性影响传输和反应动力学,导致在钠电镀过程中形成电流和应力热点。此外,研究表明,不均匀性诱导的钠金属演变及其对应力分布的影响严重影响机械过电位,导致SEI更快失效。分析揭示了三种不同的失效机制——机械、传输和动力学——它们控制着界面处不稳定性的起始。最后,对钠和锂(Li)金属负极中SEI失效的全面比较研究表明,SEI的电化学和力学特性对于塑造负极形态和界面稳定性至关重要。这项工作明确了考虑SEI属性和潜在失效模式的机械稳定性机制,并为设计用于稳定钠金属电极的人工SEI层提供了重要指导。