Nutation-based longitudinal-sensing protocols for high-field NMR with nitrogen-vacancy centers in diamond

Author:

Daly Declan1,DeVience Stephen J.1,Huckestein Emma1,Blanchard John W.1ORCID,Cremer Johannes1,Walsworth Ronald L.111

Affiliation:

1. University of Maryland, College Park

Abstract

Nitrogen-vacancy (N-V) centers in diamond enable nuclear magnetic resonance (NMR) spectroscopy of samples at the nano- and microscale. However, at typical tesla-scale NMR magnetic field strengths, N-V–NMR protocols become difficult to implement due to the challenge of driving fast N-V pulse sequences sensitive to nuclear Larmor frequencies above a few megahertz. We perform simulations and theoretical analysis of the experimental viability of N-V NMR at tesla-scale magnetic fields using a measurement protocol called DRACAERIS (Double Rewound ACquisition Amplitude Encoded Radio Induced Signal). DRACAERIS detects the longitudinal magnetization of the NMR sample at a much lower driven Rabi frequency, more suitable technically for N-V detection. We discuss how pulse errors, finite pulse lengths, and nuclear spin-spin couplings affect the resulting NMR spectra. We find that DRACAERIS is less susceptible to pulse imperfections and off-resonance effects than previous protocols for longitudinal magnetization detection. We also identify reasonable parameters for experimental implementation. Published by the American Physical Society 2024

Funder

U.S. Army Research Laboratory MAQP Program

U.S. Army Research Office

U.S. Air Force Office of Scientific Research

Gordon & Betty Moore Foundation

University of Maryland Quantum Technology Center

Publisher

American Physical Society (APS)

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