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下一代锂金属电池和钠金属电池中的关键阳极界面现象及其控制

Key Anodic Interfacial Phenomena and their Control in Next-Generation Lithium and Sodium Metal Batteries.

作者信息

Roy Kingshuk, Bhunia Manas K, Karthik Pitchiah E, Rana Ashutosh, Das Bidisa, Banerjee Abhik, Ogale Satishchandra

机构信息

Research Institute for Sustainable Energy (RISE), TCG-CREST, Salt Lake, Kolkata, 700091, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, 201002, India.

出版信息

Small. 2025 Feb;21(8):e2410167. doi: 10.1002/smll.202410167. Epub 2025 Jan 9.

Abstract

Advancing next-generation battery technologies requires a thorough understanding of the intricate phenomena occurring at anodic interfaces. This focused review explores key interfacial processes, examining their thermodynamics and consequences in ion transport and charge transfer kinetics. It begins with a discussion on the formation of the electro chemical double layer, based on the GuoyChapman model, and explores how charge carriers achieve equilibrium at the interface. This review then delves into essential interfacial processes, including metal nucleation and growth, the development and stability of the solid electrolyte interphase (SEI), and ion movement across the interface. In addition, it analyzes the impact of different electrolyte solutions-such as low- and high-concentration electrolytes and localized high-concentration electrolytes-on these interfacial processes. The role of additives, co-solvents, and diluents in modifying these interfaces is also covered. This review further evaluates techniques for characterizing the SEI layer, highlighting their strengths and limitations in both aqueous and nonaqueous battery systems. By comparing the challenges and opportunities associated with interfaces next-generation nonaqueous metal battery systems, this review aims to offer new insights into their respective advantages and limitations, ultimately guiding the design and optimization of anodic interfaces to enhance the safety and efficiency of future energy storage technologies.

摘要

推进下一代电池技术需要深入了解阳极界面处发生的复杂现象。这篇重点综述探讨了关键的界面过程,研究了它们在离子传输和电荷转移动力学中的热力学及影响。它首先基于古依-查普曼模型讨论了电化学双层的形成,并探讨了电荷载流子如何在界面处达到平衡。然后,这篇综述深入研究了基本的界面过程,包括金属成核与生长、固体电解质界面(SEI)的形成与稳定性以及离子在界面上的移动。此外,它还分析了不同电解质溶液(如低浓度和高浓度电解质以及局部高浓度电解质)对这些界面过程的影响。还涵盖了添加剂、共溶剂和稀释剂在修饰这些界面中的作用。这篇综述进一步评估了表征SEI层的技术,突出了它们在水性和非水性电池系统中的优势和局限性。通过比较下一代非水性金属电池系统界面相关的挑战和机遇,这篇综述旨在为它们各自的优缺点提供新的见解,最终指导阳极界面的设计和优化,以提高未来储能技术的安全性和效率。

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