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Probing condensed matter physics with magnetometry based on nitrogen-vacancy centres in diamond

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arxiv 1804.08742 v1 pith:AVCR43EL submitted 2018-04-23 cond-mat.str-el

classification cond-mat.str-el
keywords dynamicmagneticmagnetometryphysicscondensedmatterstaticcorrelated-electron
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The magnetic fields generated by spins and currents provide a unique window into the physics of correlated-electron materials and devices. Proposed only a decade ago, magnetometry based on the electron spin of nitrogen-vacancy (NV) defects in diamond is emerging as a platform that is excellently suited for probing condensed matter systems: it can be operated from cryogenic temperatures to above room temperature, has a dynamic range spanning from DC to GHz, and allows sensor-sample distances as small as a few nanometres. As such, NV magnetometry provides access to static and dynamic magnetic and electronic phenomena with nanoscale spatial resolution. Pioneering work focused on proof-of-principle demonstrations of its nanoscale imaging resolution and magnetic field sensitivity. Now, experiments are starting to probe the correlated-electron physics of magnets and superconductors and to explore the current distributions in low-dimensional materials. In this Review, we discuss the application of NV magnetometry to the exploration of condensed matter physics, focusing on its use to study static and dynamic magnetic textures, and static and dynamic current distributions.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Hearing the light: stray-field noise from the emergent photon in quantum spin ice

    cond-mat.str-el 2025-12 conditional novelty 7.0 of 10

    Finite-size emergent-photon modes produce measurable, boundary-condition-dependent stray-field noise: superconducting boundaries give sharp NV-detected spectra, insulating boundaries give none.

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