High-Field Magnetometry with Hyperpolarized Nuclear Spins
Ozgur Sahin (1), Erica de Leon Sanchez (1), Sophie Conti (1), Amala, Akkiraju (1), Paul Reshetikhin (1), Emanuel Druga (1), Aakriti Aggarwal (1),, Benjamin Gilbert (2), Sunil Bhave (3), Ashok Ajoy (1, 4) ((1) Department, of Chemistry, University of California, Berkeley

TL;DR
This paper introduces a high-field quantum magnetometer using hyperpolarized ${}^{13}C$ nuclear spins in diamond, achieving high spectral resolution and sensitivity for nanoscale NMR applications.
Contribution
It demonstrates a novel high-field nuclear spin magnetometer with long coherence times and continuous interrogation, surpassing conventional NV center sensors in certain aspects.
Findings
Spectral resolution better than 100 mHz at 7T
Single-shot sensitivity better than 70 pT
Long ${}^{13}C$ spin coherence times over 20 seconds
Abstract
Quantum sensors have attracted broad interest in the quest towards sub-micronscale NMR spectroscopy. Such sensors predominantly operate at low magnetic fields. Instead, however, for high resolution spectroscopy, the high-field regime is naturally advantageous because it allows high absolute chemical shift discrimination. Here we propose and demonstrate a high-field spin magnetometer constructed from an ensemble of hyperpolarized nuclear spins in diamond. The nuclei are initialized via Nitrogen Vacancy (NV) centers and protected along a transverse Bloch sphere axis for minute-long periods. When exposed to a time-varying (AC) magnetic field, they undergo secondary precessions that carry an imprint of its frequency and amplitude. The method harnesses long rotating frame sensor lifetimes 20s, and their ability to be continuously…
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Taxonomy
TopicsAdvanced NMR Techniques and Applications · Atomic and Subatomic Physics Research · Superconducting Materials and Applications
