Regulating the reduction reaction pathways via manipulating the solvation shell and donor number of the solvent in Li-CO 2 chemistry

Author:

Zhang Wenchao12ORCID,Zhang Fangli3ORCID,Liu Sailin4ORCID,Pang Wei Kong3ORCID,Lin Zhang12ORCID,Guo Zaiping4ORCID,Chai Liyuan12

Affiliation:

1. School of Metallurgy and Environment, Central South University, Changsha 410083, China

2. Chinese National Engineering Research Centre for Control and Treatment of Heavy Metal Pollution, Central South University, Changsha 410083, China

3. Institute for Superconducting & Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, Wollongong, New South Wales 2500, Australia

4. School of Chemical Engineering and Advanced Materials, The University of Adelaide, Adelaide, South Australis 5005, Australia

Abstract

Transforming CO 2 into valuable chemicals is an inevitable trend in our current society. Among the viable end-uses of CO 2 , fixing CO 2 as carbon or carbonates via Li-CO 2 chemistry could be an efficient approach, and promising achievements have been obtained in catalyst design in the past. Even so, the critical role of anions/solvents in the formation of a robust solid electrolyte interphase (SEI) layer on cathodes and the solvation structure have never been investigated. Herein, lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) in two common solvents with various donor numbers (DN) have been introduced as ideal examples. The results indicate that the cells in dimethyl sulfoxide (DMSO)-based electrolytes with high DN possess a low proportion of solvent-separated ion pairs and contact ion pairs in electrolyte configuration, which are responsible for fast ion diffusion, high ionic conductivity, and small polarization. The 3 M DMSO cell delivered the lowest polarization of 1.3 V compared to all the tetraethylene glycol dimethyl ether (TEGDME)-based cells (about 1.7 V). In addition, the coordination of the O in the TFSI anion to the central solvated Li + ion was located at around 2 Å in the concentrated DMSO-based electrolytes, indicating that TFSI anions could access the primary solvation sheath to form an LiF-rich SEI layer. This deeper understanding of the electrolyte solvent property for SEI formation and buried interface side reactions provides beneficial clues for future Li-CO 2 battery development and electrolyte design.

Funder

National Natural Science Foundation of China

Department of Education and Training | Australian Research Council

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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