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Quantum Electrometer for Time-Resolved Material Science at the Atomic Lattice Scale
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The detection of individual charges plays a crucial role in fundamental material science and the advancement of classical and quantum high-performance technologies that operate with low noise. However, resolving charges at the lattice scale in a time-resolved manner has not been achieved so far. Here, we present the development of an electrometer with 60 ns acquisition steps, leveraging on the spectroscopy of an optically-active spin defect embedded in a solid-state material with a non-linear Stark response. By applying our approach to diamond, a widely used platform for quantum technology applications, we can distinguish the distinct charge traps at the lattice scale, quantify their impact on transport dynamics and noise generation, analyze relevant material properties, and develop strategies for material optimization.
Forward citations
Cited by 2 Pith papers
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Laser-cutting produces diamond microdevices for open microcavities with surface quality and coherent color centers comparable to electron-beam lithography.
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Large-Range Tuning and Stabilization of the Optical Transition of Diamond Tin-Vacancy Centers by In-Situ Strain Control
A diamond MEMS device tunes tin-vacancy center optical transitions over 40 GHz and stabilizes them with real-time strain feedback, a 12-fold stability improvement.
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