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November 30, 2025Physical Review Applied4 citationsOpen Access

Miniaturized magnetic-field sensor based on nitrogen-vacancy centers

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SJStefan JohanssonDLDennis LönardIBIsabel Cardoso Barbosa

Key Points

  • Achieved magnetic-field sensitivity of 51.8 nT/√Hz using a nitrogen-vacancy center at optical and microwave powers.
  • The dual-fiber approach minimizes background autofluorescence while guiding excitation light to the sensor.
  • This fiber-based sensor design enhances measurements in light-sensitive environments, particularly biological tissue.
  • The sensor opens avenues for high-resolution magnetic-field measurements in ultracold quantum gas experiments.

Abstract

The nitrogen-vacancy (NV) center in diamond is a prime candidate for quantum sensing technologies. Here, we present a fully integrated and mechanically robust fiber-based endoscopic sensor with a tip diameter of 1.25 mm . On its tip, a direct laser-writing process is used to secure a diamond containing NV centers above the fiber’s core inside a polymer structure. Additionally, a metallic direct laser-written antenna structure next to the fiber facet allows efficient microwave manipulation of NV-center spins. The sensor achieves a shot-noise-limited magnetic-field sensitivity of 5.9 nT / Hz using a 15 − μ m -sized microdiamond at a microwave power of 50 mW and an optical power of 2.15 mW . Using lock-in techniques, we measure a sensitivity of 51.8 nT / Hz . Furthermore, we introduce a dual-fiber concept that enables, in combination with a direct laser-written structure, independent guiding of excitation and fluorescence light and thus reduces background autofluorescence. Moreover, controlled guiding of excitation light to the diamond while avoiding sample illumination may enable operation in light-sensitive environments such as biological tissue. While the demonstrated sensitivity is achieved using a single-fiber configuration, the dual-fiber approach provides a path toward integrating smaller diamonds, where autofluorescence would otherwise limit performance. We demonstrate the capability of vector magnetic-field measurements in the type of magnetic field used in state-of-the-art ultracold quantum gas experiments, opening a potential arena in which high resolution and high sensitivity are required.

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Cite This Study

Johansson et al. (2025) studied this question.

synapsesocial.com/papers/692b94581d383f2b2a378f2bhttps://doi.org/10.1103/lbqj-d5zv
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