| Literature DB >> 36161896 |
Zhengyu Ju1, Steven T King2,3, Xiao Xu1, Xiao Zhang1, Kasun U Raigama1, Kenneth J Takeuchi2,3,4,5, Amy C Marschilok2,3,4,5, Lei Wang2,4, Esther S Takeuchi2,3,4,5, Guihua Yu1.
Abstract
As one of the prevailing energy storage systems, lithium-ion batteries (LIBs) have become an essential pillar in electric vehicles (EVs) during the past decade, contributing significantly to a carbon-neutral future. However, the complete transition to electric vehicles requires LIBs with yet higher energy and power densities. Here, we propose an effective methodology via controlled nanosheet self-assembly to prepare low-tortuosity yet high-density and high-toughness thick electrodes. By introducing a delicate densification in a three-dimensionally interconnected nanosheet network to maintain its vertical architecture, facile electron and ion transports are enabled despite their high packing density. This dense and thick electrode is capable of delivering a high volumetric capacity >1,600 mAh cm-3, with an areal capacity up to 32 mAh cm-2, which is among the best reported in the literature. The high-performance electrodes with superior mechanical and electrochemical properties demonstrated in this work provide a potentially universal methodology in designing advanced battery electrodes with versatile anisotropic properties.Entities:
Keywords: assembly; high-density; lithium-ion battery; low-tortuosity; nanosheets
Year: 2022 PMID: 36161896 PMCID: PMC9546623 DOI: 10.1073/pnas.2212777119
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 12.779