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

Authors
Kumar, Yedluri AnilRoy, NipaRamachandran, TholkappiyanAssiri, Mohammed A.Rao, Sunkara SrinivasaMoniruzzaman, MdJoo, Sang Woo
Issue Date
Jul-2024
Publisher
ROYAL SOC CHEMISTRY
Citation
DALTON TRANSACTIONS, v.53, no.30, pp 12410 - 12433
Pages
24
Journal Title
DALTON TRANSACTIONS
Volume
53
Number
30
Start Page
12410
End Page
12433
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/92168
DOI
10.1039/d4dt01133c
ISSN
1477-9226
1477-9234
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. All-solid-state batteries offer secure energy storage. Nanomaterials boost performance, but challenges include reducing electrolyte size while maintaining conductivity. This review highlights recent advances in electrode-electrolyte interfaces.
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