| Literature DB >> 33580625 |
Lin Ma1, Travis P Pollard1, Yong Zhang2, Marshall A Schroeder1, Michael S Ding1, Arthur V Cresce1, Ruimin Sun3, David R Baker1, Brett A Helms4, Edward J Maginn2, Chunsheng Wang3, Oleg Borodin1, Kang Xu1.
Abstract
Aqueous rechargeable zinc metal batteries promise attractive advantages including safety, high volumetric energy density, and low cost; however, such benefits cannot be unlocked unless Zn reversibility meets stringent commercial viability. Herein, we report remarkable improvements on Zn reversibility in aqueous electrolytes when phosphonium-based cations are used to reshape interfacial structures and interphasial chemistries, particularly when their ligands contain an ether linkage. This novel aqueous electrolyte supports unprecedented Zn reversibility by showing dendrite-free Zn plating/stripping for over 6400 h at 0.5 mA cm-2 , or over 280 h at 2.5 mA cm-2 , with coulombic efficiency above 99 % even with 20 % Zn utilization per cycle. Excellent full cell performance is demonstrated with Na2 V6 O16 ⋅1.63 H2 O cathode, which cycles for 2000 times at 300 mA g-1 . The microscopic characterization and modeling identify the mechanism of unique interphase chemistry from phosphonium and its functionalities as the key factors responsible for dictating reversible Zn chemistry.Entities:
Keywords: Zn metal batteries; aqueous electrolytes; batteries; interphasial chemistry; supporting cations
Year: 2021 PMID: 33580625 DOI: 10.1002/anie.202017020
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336