Characterizing Temperature and Strain Variations with Qubit Ensembles for Their Robust Coherence Protection
Abstract
Solid-state spin defects, especially nuclear spins with potentially achievable long coherence times, are compelling candidates for quantum memories and sensors. However, their current performances are still limited by dephasing due to variations of their intrinsic quadrupole and hyperfine interactions. We propose an unbalanced echo to overcome this challenge by using a second spin to refocus variations of these interactions while preserving the quantum information stored in the nuclear spin free evolution. The unbalanced echo can be used to probe the temperature and strain distribution in materials. We develop first-principles methods to predict variations of these interactions and reveal their correlation over large temperature and strain ranges. Experiments performed in an ensemble of ∼10¹⁰ nuclear spins in diamond demonstrate a 20-fold dephasing time increase, limited by other noise sources. We further numerically show that our method can refocus even stronger noise variations than present in our experiments.
Copyright and License
© 2023 American Physical Society.
Acknowledgement
This work was supported in part by DARPA DRINQS program (Cooperative Agreement No. D18AC00024), NSF PHY1734011 and DTRA (Award No. HDTRA1-20-2-0002) Interaction of Ionizing Radiation with Matter (IIRM) University Research Alliance (URA). A. R. B. acknowledges support from a National Science Foundation Graduate Research Fellowship under Grant No. DGE-174530. The calculations in this work were performed in part on the Texas Advanced Computing Center (TACC) and the MIT engaging cluster. G. W. thanks Thanh Nguyen for help in figure revision.
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Additional details
- ISSN
- 1079-7114
- Defense Advanced Research Projects Agency
- D18AC00024
- National Science Foundation
- PHY-1734011
- Defense Threat Reduction Agency
- HDTRA1-20-2-0002
- National Science Foundation
- DGE-174530
- Caltech groups
- Institute for Quantum Information and Matter