| Literature DB >> 29016112 |
Oleg Borodin1, Liumin Suo2,3, Mallory Gobet4, Xiaoming Ren1, Fei Wang1,2, Antonio Faraone5, Jing Peng4, Marco Olguin1, Marshall Schroeder1, Michael S Ding1, Eric Gobrogge1, Arthur von Wald Cresce1, Stephen Munoz4, Joseph A Dura5, Steve Greenbaum4, Chunsheng Wang2, Kang Xu1.
Abstract
Using molecular dynamics simulations, small-angle neutron scattering, and a variety of spectroscopic techniques, we evaluated the ion solvation and transport behaviors in aqueous electrolytes containing bis(trifluoromethanesulfonyl)imide. We discovered that, at high salt concentrations (from 10 to 21 mol/kg), a disproportion of cation solvation occurs, leading to a liquid structure of heterogeneous domains with a characteristic length scale of 1 to 2 nm. This unusual nano-heterogeneity effectively decouples cations from the Coulombic traps of anions and provides a 3D percolating lithium-water network, via which 40% of the lithium cations are liberated for fast ion transport even in concentration ranges traditionally considered too viscous. Due to such percolation networks, superconcentrated aqueous electrolytes are characterized by a high lithium-transference number (0.73), which is key to supporting an assortment of battery chemistries at high rate. The in-depth understanding of this transport mechanism establishes guiding principles to the tailored design of future superconcentrated electrolyte systems.Entities:
Keywords: aqueous electrolytes; batteries; conductivity; molecular dynamics simulations; spectroscopy
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Year: 2017 PMID: 29016112 DOI: 10.1021/acsnano.7b05664
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881