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

dc.contributor.authorFabricant, Anne M.
dc.contributor.authorPicazo-Frutos, Román
dc.contributor.authorTeleanu, Florin
dc.contributor.authorRees, Gregory J.
dc.contributor.authorKircher, Raphael
dc.contributor.authorLin, Mengjiang
dc.contributor.authorEvans, William
dc.contributor.authorLuc, Paul-Martin
dc.contributor.authorHouse, Robert A.
dc.contributor.authorBruce, Peter G.
dc.contributor.authorKrüger, Peter
dc.contributor.authorBlanchard, John W.
dc.contributor.authorEills, James
dc.contributor.authorSheberstov, Kirill F.
dc.contributor.authorKörber, Rainer
dc.contributor.authorBudker, Dmitry
dc.contributor.authorBarskiy, Danila A.
dc.contributor.authorJerschow, Alexej
dc.date.accessioned2026-08-17T08:01:48Z
dc.date.issued2026
dc.description.abstractRechargeable 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 the 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 the ZULF-NMR apparatus and technique are compatible with measurements of pouch-cell batteries.en_GB
dc.identifier.doihttps://doi.org/10.25358/openscience-16134
dc.identifier.urihttps://openscience.ub.uni-mainz.de/handle/20.500.12030/16155
dc.language.isoeng
dc.rightsCC-BY-4.0
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subject.ddc530 Physikde_DE
dc.subject.ddc530 Physicsen_EN
dc.subject.ddc540 Chemiede_DE
dc.subject.ddc540 Chemistry and allied sciencesen_EN
dc.titleEnabling nondestructive observation of electrolyte composition in batteries with ultralow-field nuclear magnetic resonanceen_GB
dc.typeZeitschriftenaufsatzde_DE
jgu.apc.netprice0,00
jgu.apc.price0,00
jgu.apc.taxrate0
jgu.apc.transformationcontractRSC
jgu.dfg.year2026
jgu.identifier.uuid3762126b-c469-4afa-945a-75823bfdf27e
jgu.journal.issue12
jgu.journal.titleChemical science
jgu.journal.volume17
jgu.nationalcurrency.eur0,00
jgu.organisation.departmentFB 08 Physik, Mathematik u. Informatikde_DE
jgu.organisation.nameJohannes Gutenberg-Universität Mainzde_DE
jgu.organisation.number7940
jgu.organisation.placeMainz
jgu.organisation.rorhttps://ror.org/023b0x485
jgu.pages.end5887
jgu.pages.start5877
jgu.publisher.doi10.1039/d5sc04419g
jgu.publisher.eissn2041-6539
jgu.publisher.nameRSC
jgu.publisher.placeCambridge
jgu.publisher.year2026
jgu.relation.IsVersionOf10.1039/d5sc04419g
jgu.rights.accessrightsopenAccessen_GB
jgu.subject.ddccode530
jgu.subject.ddccode540
jgu.subject.dfgNaturwissenschaftende_DE
jgu.type.dinitypeArticleen_GB
jgu.type.resourceTexten_GB
jgu.type.versionPublished versionen_GB

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