| Literature DB >> 35644837 |
Jingyi Wu1,2, Zhengyu Ju2, Xiao Zhang2, Amy C Marschilok3,4,5, Kenneth J Takeuchi3,4,5, Huanlei Wang1, Esther S Takeuchi3,4,5, Guihua Yu2.
Abstract
Charge transport is a key process that dominates battery performance, and the microstructures of the cathode, anode, and electrolyte play a central role in guiding ion and/or electron transport inside the battery. Rational design of key battery components with varying microstructure along the charge-transport direction to realize optimal local charge-transport dynamics can compensate for reaction polarization, which accelerates electrochemical reaction kinetics. Here, the principles of charge-transport mechanisms and their decisive role in battery performance are presented, followed by a discussion of the correlation between charge-transport regulation and battery microstructure design. The design strategies of the gradient cathodes, lithium-metal anodes, and solid-state electrolytes are summarized. Future directions and perspectives of gradient design are provided at the end to enable practically accessible high-energy and high-power-density batteries.Entities:
Keywords: batteries; charge transport; charge-transport; electrochemical kinetics; energy storage; gradient design strategies
Year: 2022 PMID: 35644837 DOI: 10.1002/adma.202202780
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 32.086