Zero- to ultralow-field nuclear magnetic resonance

dc.contributor.authorBarskiy, Danila A.
dc.contributor.authorBlanchard, John W.
dc.contributor.authorBudker, Dmitry
dc.contributor.authorEills, James
dc.contributor.authorPustelny, Szymon
dc.contributor.authorSheberstov, Kirill F.
dc.contributor.authorTayler, Michael C. D.
dc.contributor.authorTrabesinger, Andreas H.
dc.date.accessioned2026-07-17T08:10:29Z
dc.date.issued2025
dc.description.abstractZero and ultralow-field nuclear magnetic resonance (ZULF NMR) is an NMR modality where experiments are performed in fields at which spin–spin interactions within molecules and materials are stronger than Zeeman interactions. This typically occurs at external fields of microtesla strength or below, considerably smaller than Earth’s field. In ZULF NMR, the measurement of spin–spin couplings and spin relaxation rates provides a nondestructive means for identifying chemicals and chemical fragments, and for conducting sample or process analyses. The absence of the symmetry imposed by a strong external magnetic field enables experiments that exploit terms in the nuclear spin Hamiltonian that are suppressed in high-field NMR, which in turn opens up new capabilities in a broad range of fields, from the search for dark matter to the preparation of hyperpolarized contrast agents for clinical imaging. Furthermore, as in ZULF NMR the Larmor frequencies are typically in the audio band, the nuclear spins can be manipulated with d.c. magnetic field pulses, and highly sensitive magnetometers are used for detection. In contrast to high-field NMR, the low-frequency signals readily pass through conductive materials such as metals, and heterogeneous samples do not lead to resonance line broadening, meaning that high-resolution spectroscopy is possible. Notable practical advantages of ZULF NMR spectroscopy are the low cost and relative simplicity and portability of the spectrometer system. In recent years ZULF NMR has become more accessible, thanks to improvements in magnetometer sensitivity and commercial availability, and the development of hyperpolarization methods that provide a simple means to boost signal strengths by several orders of magnitude. These topics are reviewed and a perspective on potential future avenues of ZULF-NMR research is presented.en_GB
dc.identifier.doihttps://doi.org/10.25358/openscience-15449
dc.identifier.urihttps://openscience.ub.uni-mainz.de/handle/20.500.12030/15470
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_GB
dc.titleZero- to ultralow-field nuclear magnetic resonanceen_GB
dc.typeZeitschriftenaufsatzde_DE
jgu.apc.netprice2387,63
jgu.apc.price2554,76
jgu.apc.taxrate7
jgu.apc.transformationcontractElsevier
jgu.dfg.year2025
jgu.identifier.uuidfd5c51ae-6d19-4841-9615-6dd649324de7
jgu.journal.titleProgress in nuclear magnetic resonance spectroscopy
jgu.journal.volume148-149
jgu.nationalcurrency.eur2387,63
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.alternative101558
jgu.publisher.doi10.1016/j.pnmrs.2025.101558
jgu.publisher.eissn1873-3301
jgu.publisher.nameElsevier
jgu.publisher.placeAmsterdam
jgu.publisher.year2025
jgu.rights.accessrightsopenAccessen_GB
jgu.subject.ddccode530
jgu.subject.dfgNaturwissenschaftende_DE
jgu.type.dinitypeArticleen_GB
jgu.type.resourceTexten_GB
jgu.type.versionPublished versionen_GB

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