Enabling nondestructive observation of electrolyte composition in batteries with ultralow-field nuclear magnetic resonance

Abstract

Rechargeable batteries represent a key transformative technology for electric vehicles, portable electronics, and renewable energy. Yet, there are few nondestructive diagnostic techniques compatible with realistic commercial cell enclosures. Many battery failures result from the loss or chemical degradation of electrolyte. In this work, we present measurements through battery enclosures that allow quantification of electrolyte amount and composition. The study employs instrumentation and techniques developed in the context of zero-to-ultralow-field nuclear magnetic resonance (ZULF NMR), with quantum magnetometers as the detection elements (atomic optically pumped magnetometers, OPMs, and superconducting quantum interference devices, SQUIDs, used in this work). In contrast to conventional NMR methodology, which suffers from skin-depth limitations, the reduced resonance frequencies in ZULF NMR make battery housing and electrodes transparent to the electromagnetic fields involved. As demonstrated here through simulation and experiment, both the solvent and lithium-salt components of the electrolyte (lithium hexafluorophosphate, LiPF6) signature can be quantified using our techniques. Further, we show that ZULF-NMR apparatus is compatible with measurement of pouch-cell batteries.

Supplementary files

Article information

Article type
Edge Article
Submitted
16 Jun 2025
Accepted
19 Jan 2026
First published
29 Jan 2026
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY license

Chem. Sci., 2026, Accepted Manuscript

Enabling nondestructive observation of electrolyte composition in batteries with ultralow-field nuclear magnetic resonance

A. M. Fabricant, R. Picazo-Frutos, F. Teleanu, G. J. Rees, R. Kircher, M. Lin, W. Evans, P. Luc, R. House, P. G. Bruce, P. Krüger, J. Blanchard, J. Eills, K. F. Sheberstov, R. Körber, D. Budker, D. A. Barskiy and A. Jerschow, Chem. Sci., 2026, Accepted Manuscript , DOI: 10.1039/D5SC04419G

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