High-precision mapping of diamond crystal strain using quantum interferometry
Mason C. Marshall, Reza Ebadi, Connor Hart, Matthew J. Turner, and Mark J.H. Ku, David F. Phillips, Ronald L. Walsworth

TL;DR
This paper introduces a highly sensitive quantum interferometry method for mapping strain in diamond crystals with micron-scale resolution, enabling advanced material characterization and sensing applications.
Contribution
The authors develop a novel quantum interferometry technique using NV centers that significantly improves strain measurement sensitivity and spatial resolution in diamond.
Findings
Achieved two orders of magnitude improvement in volume-normalized strain sensitivity.
Demonstrated three-dimensional strain mapping with high spatial resolution.
Enabled fast, sensitive characterization of diamond materials and external/internal strains.
Abstract
Crystal strain variation imposes significant limitations on many quantum sensing and information applications for solid-state defect qubits in diamond. Thus, precision measurement and control of diamond crystal strain is a key challenge. Here, we report diamond strain measurements with a unique set of capabilities, including micron-scale spatial resolution, millimeter-scale field-of-view, and a two order-of-magnitude improvement in volume-normalized sensitivity over previous work [1], reaching (with spin-strain coupling coefficients representing the dominant systematic uncertainty). We use strain-sensitive spin-state interferometry on ensembles of nitrogen vacancy (NV) color centers in single-crystal CVD bulk diamond with low strain gradients. This quantum interferometry technique provides insensitivity to magnetic-field…
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Taxonomy
TopicsDiamond and Carbon-based Materials Research · High-pressure geophysics and materials · Force Microscopy Techniques and Applications
