Enhanced quantum magnetometry with a laser-written integrated photonic diamond chip

Fuente: arXiv
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Autori principali: Guo, Yanzhao, Coccia, Giulio, Kavatamane, Vinaya Kumar, Giakoumaki, Argyro N., Vetlugin, Anton N., Ramponi, Roberta, Soci, Cesare, Barclay, Paul E., Hadden, John P., Bennett, Anthony J., Eaton, Shane M.
Natura: Preprint
Pubblicazione: 2025
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author Guo, Yanzhao
Coccia, Giulio
Kavatamane, Vinaya Kumar
Giakoumaki, Argyro N.
Vetlugin, Anton N.
Ramponi, Roberta
Soci, Cesare
Barclay, Paul E.
Hadden, John P.
Bennett, Anthony J.
Eaton, Shane M.
author_facet Guo, Yanzhao
Coccia, Giulio
Kavatamane, Vinaya Kumar
Giakoumaki, Argyro N.
Vetlugin, Anton N.
Ramponi, Roberta
Soci, Cesare
Barclay, Paul E.
Hadden, John P.
Bennett, Anthony J.
Eaton, Shane M.
contents An ensemble of negatively charged nitrogen-vacancy centers in diamond can act as a precise quantum sensor even under ambient conditions. In particular, to optimize thier sensitivity, it is crucial to increase the number of spins sampled and maximize their coupling to the detection system, without degrading their spin properties. In this paper, we demonstrate enhanced quantum magnetometry via a high-quality buried laser-written waveguide in diamond with a 4.5 ppm density of nitrogen-vacancy centers. We show that the waveguide-coupled nitrogen-vacancy centers exhibit comparable spin coherence properties as that of nitrogen-vacancy centers in pristine diamond using time-domain optically detected magnetic resonance spectroscopy. Waveguide-enhanced magnetic field sensing is demonstrated in a fiber-coupled integrated photonic chip, where probing an increased volume of high-density spins results in 63 pT$.$Hz $^{-1/2}$ of DC-magnetic field sensitivity and 20 pT$.$Hz $^{-1/2}$ of AC magnetic field sensitivity. This on-chip sensor realizes at least an order of magnitude improvement in sensitivity compared to the conventional confocal detection setup, paving the way for microscale sensing with nitrogen-vacancy ensembles.
format Preprint
id arxiv_https___arxiv_org_abs_2502_02478
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Enhanced quantum magnetometry with a laser-written integrated photonic diamond chip
Guo, Yanzhao
Coccia, Giulio
Kavatamane, Vinaya Kumar
Giakoumaki, Argyro N.
Vetlugin, Anton N.
Ramponi, Roberta
Soci, Cesare
Barclay, Paul E.
Hadden, John P.
Bennett, Anthony J.
Eaton, Shane M.
Quantum Physics
Optics
An ensemble of negatively charged nitrogen-vacancy centers in diamond can act as a precise quantum sensor even under ambient conditions. In particular, to optimize thier sensitivity, it is crucial to increase the number of spins sampled and maximize their coupling to the detection system, without degrading their spin properties. In this paper, we demonstrate enhanced quantum magnetometry via a high-quality buried laser-written waveguide in diamond with a 4.5 ppm density of nitrogen-vacancy centers. We show that the waveguide-coupled nitrogen-vacancy centers exhibit comparable spin coherence properties as that of nitrogen-vacancy centers in pristine diamond using time-domain optically detected magnetic resonance spectroscopy. Waveguide-enhanced magnetic field sensing is demonstrated in a fiber-coupled integrated photonic chip, where probing an increased volume of high-density spins results in 63 pT$.$Hz $^{-1/2}$ of DC-magnetic field sensitivity and 20 pT$.$Hz $^{-1/2}$ of AC magnetic field sensitivity. This on-chip sensor realizes at least an order of magnitude improvement in sensitivity compared to the conventional confocal detection setup, paving the way for microscale sensing with nitrogen-vacancy ensembles.
title Enhanced quantum magnetometry with a laser-written integrated photonic diamond chip
topic Quantum Physics
Optics
url https://arxiv.org/abs/2502.02478