Strain induced electrochemical behaviors of ionic liquid electrolytes in an electrochemical double layer capacitor: Insights from molecular dynamics simulations

Author:

Roy Tribeni123ORCID,Goel Saurav34ORCID,Costa Luciano T.5ORCID,Titirici Maria-Magdalena6ORCID,Offer Gregory J.1ORCID,Marinescu Monica1ORCID,Wang Huizhi1ORCID

Affiliation:

1. Department of Mechanical Engineering, Imperial College London 1 , London SW7 2AZ, United Kingdom

2. Department of Mechanical Engineering, Birla Institute of Technology and Science Pilani, Pilani Campus 2 , Pilani 333031, India

3. London South Bank University 3 , 103 Borough Road, London SE1 0AA, United Kingdom

4. Department of Mechanical Engineering, University of Petroleum and Energy Studies 4 , Dehradun 248007, India

5. MolMod-CS, Institute of Chemistry, Universidade Federal Fluminense 5 , CEP 24020-141 Niteroi-RJ, Brazil

6. Department of Chemical Engineering, Imperial College London 6 , London SW7 2AZ, United Kingdom

Abstract

Electrochemical Double Layer Capacitors (EDLCs) with ionic liquid electrolytes outperform conventional ones using aqueous and organic electrolytes in energy density and safety. However, understanding the electrochemical behaviors of ionic liquid electrolytes under compressive/tensile strain is essential for the design of flexible EDLCs as well as normal EDLCs, which are subject to external forces during assembly. Despite many experimental studies, the compression/stretching effects on the performance of ionic liquid EDLCs remain inconclusive and controversial. In addition, there is hardly any evidence of prior theoretical work done in this area, which makes the literature on this topic scarce. Herein, for the first time, we developed an atomistic model to study the processes underlying the electrochemical behaviors of ionic liquids in an EDLC under strain. Constant potential non-equilibrium molecular dynamics simulations are conducted for EMIM BF4 placed between two graphene walls as electrodes. Compared to zero strain, low compression of the EDLC resulted in compromised performance as the electrode charge density dropped by 29%, and the performance reduction deteriorated significantly with a further increase in compression. In contrast, stretching is found to enhance the performance by increasing the charge storage in the electrodes by 7%. The performance changes with compression and stretching are due to changes in the double-layer structure. In addition, an increase in the value of the applied potential during the application of strain leads to capacity retention with compression revealed by the newly performed simulations.

Funder

Innovate UK

Science and Engineering Research Board

UK Research and Innovation

Royal Society

British Council

Universidade Federal Fluminense

Imperial College London

London South Bank University

University of Bristol

Shiv Nadar Foundation

Indian Institute of Technology Guwahati

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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