Physical Review Applied· 2026Q1
Nanophotonic quantum magnetometry in a spin-dense diamond cavity
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- Q1SCImago
- 2026year
Short summary
A new diamond cavity integrated with a tapered optical fiber achieves a record DC sensitivity of 58 nT/sqrt(Hz) for nanofabricated magnetometers, enabling micrometer-scale resolution.
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Key points
- Integrated diamond cavity with tapered optical fiber for NV center magnetometry.
- Achieved a record DC sensitivity of 58 nT/sqrt(Hz) for nanofabricated cavity magnetometers.
- Enables micrometer-scale spatial resolution and low-power operation.
- Fiber-coupling facilitates scalable on-chip integration.
AI-generated from the title and abstract; the full text is not read.
Abstract
Quantum sensors based on the nitrogen-vacancy (NV) center in diamond are leading platforms for high-sensitivity magnetometry with nanometer-scale resolution. State-of-the-art implementations, however, typically rely on bulky free-space optics or sacrifice spatial resolution to achieve high sensitivities. Here, we realize an integrated platform that overcomes this trade-off by fabricating monolithic whispering-gallery-mode cavities from a diamond chip containing a high density of NV centers and by evanescently coupling excitation to and photoluminescence from the cavity using a tapered optical fiber. Employing a lock-in-amplified Ramsey magnetometry scheme, we achieve a photon-shot-noise-limited DC sensitivity of $58\,\text{nT}/\sqrt{\text{Hz}}$---the best sensitivity reported to date for a nanofabricated cavity-based magnetometer. The microscopic cavity size enables micrometer-scale spatial resolution and low-power operation, while fiber-coupling provides a path to scalable on-chip integration. Arrays of such sensors could enable NV-NMR spectroscopy of sub-nanoliter samples, new magnetic-gradient imaging architectures, and compact biosensing platforms.
The authors' abstract, as published at the source. Physical Review Applied, 2026 · DOI ↗
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Field: Materials Chemistry
Materials ChemistryMaterials Science