4.8 Article

Scanning gradiometry with a single spin quantum magnetometer

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-31454-6

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资金

  1. European Research Council [ERC CoG 817720]
  2. Swiss National Science Foundation (SNSF) [200020_175600]
  3. National Center of Competence in Research in Quantum Science and Technology (NCCR QSIT)
  4. Advancing Science and TEchnology thRough dIamond Quantum Sensing (ASTERIQS) program, of the European Commission [820394]
  5. Swiss National Science Foundation [200021-188414]
  6. Swiss National Science Foundation (SNF) [200020_175600] Funding Source: Swiss National Science Foundation (SNF)

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Quantum sensors based on spin defects in diamond have enabled detailed imaging of nanoscale magnetic patterns, and the gradiometry technique significantly enhances the measurement sensitivity of static fields, providing new opportunities in the imaging of weakly magnetic systems.
Quantum sensors based on spin defects in diamond have recently enabled detailed imaging of nanoscale magnetic patterns, such as chiral spin textures, two-dimensional ferromagnets, or superconducting vortices, based on a measurement of the static magnetic stray field. Here, we demonstrate a gradiometry technique that significantly enhances the measurement sensitivity of such static fields, leading to new opportunities in the imaging of weakly magnetic systems. Our method relies on the mechanical oscillation of a single nitrogen-vacancy center at the tip of a scanning diamond probe, which up-converts the local spatial gradients into ac magnetic fields enabling the use of sensitive ac quantum protocols. We show that gradiometry provides important advantages over static field imaging: (i) an order-of-magnitude better sensitivity, (ii) a more localized and sharper image, and (iii) a strong suppression of field drifts. We demonstrate the capabilities of gradiometry by imaging the nanotesla fields appearing above topographic defects and atomic steps in an antiferromagnet, direct currents in a graphene device, and para- and diamagnetic metals. Scanning NV center magnetometry enables imaging of weak magnetic fields at the nanoscale. Huxter et al. achieve an order-of-magnitude improvement in sensitivity by converting a spatial field gradient into an AC field by mechanical oscillations of the sensor, and image stray fields from atomic steps in an antiferromagnet.

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