Revolutionizing energy storage: exploring the nanoscale frontier of all-solid-state batteries.

IF 3.5 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR Dalton Transactions Pub Date : 2024-07-02 DOI:10.1039/d4dt01133c
Yedluri Anil Kumar, Nipa Roy, Tholkappiyan Ramachandran, Mohammed A Assiri, Sunkara Srinivasa Rao, Md Moniruzzaman, Sang Woo Joo
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Abstract

Due to their distinctive security characteristics, all-solid-state batteries are seen as a potential technology for the upcoming era of energy storage. The flexibility of nanomaterials shows enormous potential for the advancement of all-solid-state batteries' exceptional power and energy storage capacities. These batteries might be applied in many areas such as large-scale energy storage for power grids, as well as in the creation of foldable and flexible electronics, and portable gadgets. The most difficult aspect of creating a comprehensive nanoscale all-solid-state battery assembly is the task of decreasing the particle size of the solid electrolyte while maintaining its excellent ionic conductivity. Materials possessing nanoscale structural features and a substantial electrochemically active surface area have the potential to significantly enhance power characteristics and the cycle life. This might bring about substantial changes to existing energy storage models. The primary objective of this research is to summarize the latest advancements in utilizing nanomaterials for energy harvesting in various all-solid-state battery assemblies. This study examines the most complex solid-solid interfaces of all-solid-state batteries, as well as feasible methods for implementing nanomaterials in such interfaces. Currently, there is significant attention on the necessity to develop electrode-solid electrolyte interfaces that exhibit nanoscale particle articulation and other characteristics related to the behavior of lithium ions.

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能源存储的革命:探索全固态电池的纳米级前沿。
全固态电池因其独特的安全特性,被视为即将到来的能源存储时代的潜在技术。纳米材料的灵活性为提高全固态电池的卓越功率和储能能力提供了巨大的潜力。这些电池可应用于许多领域,如电网的大规模储能、可折叠和柔性电子产品以及便携式小工具。要制造出全面的纳米级全固态电池组件,最困难的是在保持固体电解质优良离子导电性的同时减小其粒径。具有纳米级结构特征和大量电化学活性表面积的材料有可能显著提高功率特性和循环寿命。这可能会给现有的储能模式带来重大变革。本研究的主要目的是总结在各种全固态电池组件中利用纳米材料进行能量收集的最新进展。本研究探讨了全固态电池最复杂的固-固界面,以及在此类界面中采用纳米材料的可行方法。目前,人们非常关注开发电极-固体电解质界面的必要性,这种界面应表现出纳米级粒子衔接以及与锂离子行为相关的其他特性。
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来源期刊
Dalton Transactions
Dalton Transactions 化学-无机化学与核化学
CiteScore
6.60
自引率
7.50%
发文量
1832
审稿时长
1.5 months
期刊介绍: Dalton Transactions is a journal for all areas of inorganic chemistry, which encompasses the organometallic, bioinorganic and materials chemistry of the elements, with applications including synthesis, catalysis, energy conversion/storage, electrical devices and medicine. Dalton Transactions welcomes high-quality, original submissions in all of these areas and more, where the advancement of knowledge in inorganic chemistry is significant.
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