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arXiv · 2604.25660

Nanoscale Sensing of Solid-State Samples with High Frequency Resolution

Abstract

To meet the growing demand for nanoscale surface analysis, nitrogen-vacancy (NV) centers offer a high-sensitivity alternative by leveraging their ability to operate in immediate proximity to the sample. In this work, we propose a quantum control protocol designed to overcome the inherent challenges of solid-state environments, specifically by mitigating anisotropy and strong dipole-dipole interactions to enable the detection of isotropic chemical shifts at the nanoscale. To achieve this, our scheme synchronizes a slowly rotating magnetic field with tailored RF decoupling and MW control of the NV sensors. We provide an analytical mapping that explicitly links the measured spectrum to the control sequence features and the underlying system parameters, enabling a straightforward characterization of the sample.

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BibTeXRIS

P. Alsina-Bolívar, I. Iriarte-Zendoia, D. B. Bucher, J. Casanova. 2026-04-29. Nanoscale Sensing of Solid-State Samples with High Frequency Resolution. https://arxiv.org/abs/2604.25660

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