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Multifunctional Dipoles Enabling Enhanced Ionic and Electronic Transport for High-Energy Batteries

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Title
Multifunctional Dipoles Enabling Enhanced Ionic and Electronic Transport for High-Energy Batteries
Issued Date
2026-01
Citation
Nano-Micro Letters, v.18, no.1
Type
Article
Author Keywords
Electrochemical processesElectronic migrationHigh-energy batteriesIonic transportDipoles
Keywords
LI-IONSTORAGE SYSTEMSMETALLITHIUM-IONINTERFACIAL STRUCTUREINTERPHASESOLVATIONINSIGHTSUPPRESSIONTEMPERATURE
ISSN
2311-6706
Abstract

Achieving high-energy density remains a key objective for advanced energy storage systems. However, challenges, such as poor cathode conductivity, anode dendrite formation, polysulfide shuttling, and electrolyte degradation, continue to limit performance and stability. Molecular and ionic dipole interactions have emerged as an effective strategy to address these issues by regulating ionic transport, modulating solvation structures, optimizing interfacial chemistry, and enhancing charge transfer kinetics. These interactions also stabilize electrode interfaces, suppress side reactions, and mitigate anode corrosion, collectively improving the durability of high-energy batteries. A deeper understanding of these mechanisms is essential to guide the design of next-generation battery materials. Herein, this review summarizes the development, classification, and advantages of dipole interactions in high-energy batteries. The roles of dipoles, including facilitating ion transport, controlling solvation dynamics, stabilizing the electric double layer, optimizing solid electrolyte interphase and cathode-electrolyte interface layers, and inhibiting parasitic reactions-are comprehensively discussed. Finally, perspectives on future research directions are proposed to advance dipole-enabled strategies for high-performance energy storage. This review aims to provide insights into the rational design of dipole-interactive systems and promote the progress of electrochemical energy storage technologies.

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URI
https://scholar.dgist.ac.kr/handle/20.500.11750/60233
DOI
10.1007/s40820-025-01926-7
Publisher
Shanghai Jiao Tong University Press
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이종민
Lee, Jong-Min이종민

Department of Energy Science and Engineering

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