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Intrinsic Stress-strain in Barium Titanate Piezocatalysts Enabling Lithium-Oxygen Batteries with Low Overpotential and Long Life.

Authors :
Zheng LJ
Song LN
Wang XX
Liang S
Wang HF
Du XY
Xu JJ
Source :
Angewandte Chemie (International ed. in English) [Angew Chem Int Ed Engl] 2023 Oct 26; Vol. 62 (44), pp. e202311739. Date of Electronic Publication: 2023 Sep 25.
Publication Year :
2023

Abstract

Rechargeable lithium-oxygen (Li-O <subscript>2</subscript> ) batteries with high theoretical energy density are considered as promising candidates for portable electronic devices and electric vehicles, whereas their commercial application is hindered due to poor cyclic stability caused by the sluggish kinetics and cathode passivation. Herein, the intrinsic stress originated from the growth and decomposition of the discharge product (lithium peroxide, Li <subscript>2</subscript> O <subscript>2</subscript> ) is employed as a microscopic pressure resource to induce the built-in electric field, further improving the reaction kinetics and interfacial Lithium ion (Li <superscript>+</superscript> ) transport during cycling. Piezopotential caused by the intrinsic stress-strain of solid Li <subscript>2</subscript> O <subscript>2</subscript> is capable of providing the driving force for the separation and transport of carriers, enhancing the Li <superscript>+</superscript> transfer, and thus improving the redox reaction kinetics of Li-O <subscript>2</subscript> batteries. Combined with a variety of in situ characterizations, the catalytic mechanism of barium titanate (BTO), a typical piezoelectric material, was systematically investigated, and the effect of stress-strain transformation on the electrochemical reaction kinetics and Li <superscript>+</superscript> interface transport for the Li-O <subscript>2</subscript> batteries is clearly established. The findings provide deep insight into the surface coupling strategy between intrinsic stress and electric fields to regulate the electrochemical reaction kinetics behavior and enhance the interfacial Li <superscript>+</superscript> transport for battery system.<br /> (© 2023 Wiley-VCH GmbH.)

Details

Language :
English
ISSN :
1521-3773
Volume :
62
Issue :
44
Database :
MEDLINE
Journal :
Angewandte Chemie (International ed. in English)
Publication Type :
Academic Journal
Accession number :
37723129
Full Text :
https://doi.org/10.1002/anie.202311739