Solid electrolyte interphases for high-energy aqueous aluminum electrochemical cells
Author(s) -
Qing Zhao,
Michael J. Zachman,
Wajdi I. Al Sadat,
Jingxu Zheng,
Lena F. Kourkoutis,
Lynden A. Archer
Publication year - 2018
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aau8131
Subject(s) - electrolyte , interphase , electrochemistry , aqueous solution , materials science , chemical engineering , aluminium , high energy , electrochemical cell , nanotechnology , chemistry , electrode , metallurgy , organic chemistry , genetics , engineering physics , biology , engineering
Electrochemical cells based on aluminum (Al) are of long-standing interest because Al is earth abundant, low cost, and chemically inert. The trivalent Al ions also offer among the highest volume-specific charge storage capacities (8040 mAh cm), approximately four times larger than achievable for Li metal anodes. Rapid and irreversible formation of a high-electrical bandgap passivating AlO oxide film on Al have, to date, frustrated all efforts to create aqueous Al-based electrochemical cells with high reversibility. Here, we investigate the interphases formed on metallic Al in contact with ionic liquid (IL)-eutectic electrolytes and find that artificial solid electrolyte interphases (ASEIs) formed spontaneously on the metal permanently transform its interfacial chemistry. The resultant IL-ASEIs are further shown to enable aqueous Al electrochemical cells with unprecedented reversibility. As an illustration of the potential benefits of these interphases, we create simple Al||MnO aqueous cells and report that they provide high specific energy (approximately 500 Wh/kg, based on MnO mass in the cathode) and intrinsic safety features required for applications.
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