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美利体育登录入口官网:先进全固态钠电池的理论辅助实验优化

Theoretical Assistant Experimental Optimization for Advanced All-Solid-State Sodium Batteries

作者:Xiangdan Zhang;Wenbin Li;Zhenling Wang;Guosheng Shao;Weihua Chen;

DOI:https://doi.org/10.1021/acs.accounts.5c00452

发表时间:2025年

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美利体育登录入口官网:摘要

点击复制节链接节链接已复制!概览全固态钠电池(ASSSBs)作为替代方案,因其高能量密度、高安全性和高资源丰富性,是平衡能源结构不可或缺的组成部分。ASSSBs技术的创新不仅消除了传统液态电解质泄漏/燃烧相关的安全风险,还使能量密度达到200 Wh kg?1。此外,通过采用无阳极架构设计,能量密度有望超过300 Wh kg?1,显著拓展其在电动汽车和智能电网等领域的应用潜力。然而,其发展面临固态电解质(SSEs)离子电导率低、SSEs与电极之间的高界面阻抗、循环过程中材料显著体积变化以及有害界面反应等关键挑战。Na+较大的离子半径导致其在固态基质中迁移缓慢,而固-固界面处不完美的物理接触会增加阻抗并引发枝晶形成。循环过程中电极材料的结构变形进一步破坏界面稳定性。这些多尺度复杂性仅通过实验试错难以解决。因此,理论计算方法(如分子动力学模拟揭示离子传输机制、第一性原理计算预测材料稳定性、机器学习(ML)加速高性能SSEs筛。┪方缑嫔杓坪筒牧嫌呕峁┝斯丶,从而推动ASSSBs的实用化。鉴于这些发现,我们强调理论计算与实验方法的整合,以加深对ASSSBs的理解并加速其发展。首先简要介绍ASSSBs的基础和设计原理,随后系统回顾其基本理论和验证模式。值得注意的是,我们详细讨论了理论计算与实验结果在ASSSBs关键组件(包括SSEs、正极、负极及其界面工程)中的结合,具体涵盖SSEs与高压正极的界面兼容性、SSEs与负极的界面形成能、Na+在界面处的传输机制以及聚合物SSE/Na负极界面的分子动力学模拟。最后,我们全面概述当前挑战与未来前景,为下一代高性能ASSSBs指明方向。ACS出版物版权所有 ? 2025 美国化学学会主题什么是主题文章主题自动从ACS主题分类法中应用,描述文章的科学概念和主题。电池 电极 电解质 I


美利体育登录入口官网:Abstract

AbstractClick to copy section linkSection link copied!ConspectusAll-solid-state sodium batteries (ASSSBs) are indispensable components as alternatives to balance the energy structure owing to high energy density, high safety, and high resource abundance. The innovation of ASSSBs technology not only eliminates the safety risks of leakage/combustion associated with traditional liquid electrolytes but also enables the energy density to reach 200 Wh kg?1. Furthermore, the energy density can potentially exceed 300 Wh kg?1 by adopting an anode-free architecture design, significantly expanding its application potential in fields such as electric vehicles and smart grids. However, their development faces critical challenges such as low ionic conductivity in solid-state electrolytes (SSEs), high interface impedance between SSEs and electrodes, significant volume changes in materials during cycling, and detrimental interfacial reactions. The larger ionic radius of Na+ leads to sluggish migration within solid-state matrices, while imperfect physical contact at solid–solid interfaces increases impedance and risks dendrite formation. Structural deformation of electrode materials during cycling further destabilizes interfaces. These multiscale complexities are difficult to resolve through experimental trial-and-error alone. Therefore, theoretical computational approaches, such as molecular dynamics simulations to unravel ion transport mechanisms, first-principles calculations to predict material stability, and machine learning (ML) to accelerate high-performance SSEs screening, provide critical insights for precise interface design and material optimization, thereby advancing the practical realization of ASSSBs. In light of these findings, we emphasize the integration of theoretical calculations and experimental approaches to deepen the understanding and accelerate the development of ASSSBs. First, the foundation and design principle of ASSSBs are presented briefly. Subsequently, the fundamental theories and verification modes for ASSSBs are reviewed systematically. Notably, we meticulously discuss the combination of theoretical calculations and experimental findings for key components of ASSSBs, including SSEs, cathodes, anodes, and their interface engineering. Specific aspects covered include interface compatibility between SSEs and high-voltage cathodes, interfacial formation energies between SSEs and anodes, transport mechanisms of Na+ across interfaces, and molecular dynamics simulations of polymer SSE/Na anode interfaces. Finally, we comprehensively outline prevailing challenges and future prospects, charting a course for the next generation of high-performance ASSSBs.ACS PublicationsCopyright ? 2025 American Chemical SocietySubjectswhat are subjects Article subjects are automatically applied from the ACS Subject Taxonomy and describe the scientific concepts and themes of the article. Batteries Electrodes Electrolytes Interfaces Sodium


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