Ionic and Electronic Conductivity in Structural Negative Electrodes
Journal article, 2025

The concept of structural battery presents great potential for achieving substantial weight and volume reduction in electrified transportation. A unidirectional electrode lamina consists of carbon fibres embedded in a heterogeneous structural battery electrolyte. Dielectric spectroscopy measurements reveal the presence of both ionic and electronic conductivity through-the-thickness of electrode laminas. We report that the ionic conductivity, facilitated by the ions diffusing through the structural battery electrolyte, is reminiscent of that found in free-standing structural battery electrolytes and increases with a higher content of the ion-conducting phase. On the other hand, the through thickness electronic conductivity is dictated by the size of the electronically insulating electrolyte regions and the inter-fibre contact points forming the interconnected carbon fibre network. For suppressing the out-of-plane electronic conductivity and potential battery short-circuits in thin electrode laminas (≤ 700 μm) a glass-fibre separator is required. After galvanostatic cycling, we show that the fully-delithiated electrode lamina exhibits enhanced ionic conductivity. It indicates the presence of open microcracks, formed due the extensive expansion/contraction of carbon fibres upon charging/discharging. Our study provides valuable impedance and electrochemistry data in structural battery electrodes and half-cells, paving the way for the design of innovative, lightweight structural battery cells.

Ionic conductivity

Dielectric spectroscopy

Galvanostatic cycling

Lithiated/delithiated states

Electrode laminas

Author

Achilleas Pipertzis

Chalmers, Physics, Nano and Biophysics

Johanna Xu

Chalmers, Industrial and Materials Science, Material and Computational Mechanics

Nicole Abdou

Chalmers, Chemistry and Chemical Engineering, Applied Chemistry

Anna Martinelli

Chalmers, Chemistry and Chemical Engineering, Applied Chemistry

Leif Asp

Chalmers, Industrial and Materials Science, Material and Computational Mechanics

Jan Swenson

Chalmers, Physics, Nano and Biophysics

Electrochimica Acta

0013-4686 (ISSN)

Vol. 512 145501

Multifunctional carbon fibres for battery electrodes

Office of Naval Research (N62909-22-1-2037), 2022-06-01 -- 2025-05-31.

Realising Structural Battery Composites

European Office of Aerospace Research and Development (EOARD) (FA8655-21-1-7038), 2021-08-01 -- 2024-07-31.

2D material-based technology for industrial applications (2D-TECH)

VINNOVA (2019-00068), 2020-05-01 -- 2024-12-31.

VINNOVA (2024-03852), 2023-11-01 -- 2029-12-31.

GKN Aerospace Sweden (2D-tech), 2021-01-01 -- 2024-12-31.

Driving Forces

Sustainable development

Innovation and entrepreneurship

Subject Categories

Materials Engineering

Areas of Advance

Energy

Materials Science

Infrastructure

Chalmers Materials Analysis Laboratory

DOI

10.1016/j.electacta.2024.145501

More information

Latest update

12/19/2024