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用于钠离子电池的纳米结构电极材料的第一性原理设计:挑战与展望。

First-principles design of nanostructured electrode materials for Na-ion batteries: challenges and perspectives.

作者信息

Massaro Arianna, Fasulo Francesca, Pecoraro Adriana, Langella Aniello, Muñoz-García Ana B, Pavone Michele

机构信息

Department of Chemical Sciences, Università di Napoli "Federico II", Compl. Univ. Monte Sant'Angelo, via Cintia 21, 80126, Napoli, Italy.

National Reference Centre for Electrochemical Energy Storage (GISEL) - INSTM, 50121 Florence, Italy.

出版信息

Phys Chem Chem Phys. 2023 Jul 19;25(28):18623-18641. doi: 10.1039/d3cp01201h.

DOI:10.1039/d3cp01201h
PMID:37404199
Abstract

Post-lithium batteries are emerging as viable solutions for sustainable energy transition. Effective deployment in the market calls for great research efforts in the identification of novel component materials and the assessment of related working principles. Computational modelling can be a key player in boosting innovation and development by enabling rational strategies for the design of appropriately tuned materials with optimized activity towards battery operating processes. By gaining access to the structural and electronic features of functional electrodes, state-of-the-art DFT methods can unveil the subtle structure-property relationship that affects the uptake, transport, and storage efficiency. Hereby, we aim at reviewing the research status of theoretical advances in the field of Na-ion batteries (NIBs) and illustrating to what extent atomistic insights into sodiation/desodiation mechanisms of nanostructured materials can assist the development of effective anodes and cathodes for stable and highly performing devices. Thanks to increasing computer power and fruitful cooperation between theory and experiments, the route for effective design methodologies is being paved and will feed the upcoming developments in NIB technology.

摘要

后锂时代电池正成为可持续能源转型的可行解决方案。要在市场上有效部署,需要在新型组成材料的识别以及相关工作原理的评估方面进行大量研究。计算建模通过为设计具有针对电池运行过程优化活性的适当调谐材料提供合理策略,可成为推动创新和发展的关键因素。通过获取功能电极的结构和电子特征,先进的密度泛函理论(DFT)方法能够揭示影响摄取、传输和存储效率的微妙结构-性能关系。在此,我们旨在综述钠离子电池(NIBs)领域理论进展的研究现状,并说明对纳米结构材料的 sodiation/desodiation 机制的原子尺度洞察在多大程度上有助于开发用于稳定且高性能器件的有效阳极和阴极。由于计算机能力的不断提升以及理论与实验之间富有成效的合作,有效设计方法的道路正在铺就,并将为 NIB 技术的未来发展提供助力。

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