Quantum algorithms to detect ODMR-active defects for quantum sensing applications
Pablo A. M. Casares, Yanbing Zhou, Utkarsh Azad, Stepan Fomichev, Jack S. Baker, Chen Ling, Debasish Banerjee, Alain Delgado, Juan Miguel Arrazola

TL;DR
This paper introduces two quantum algorithms for detecting defect properties related to ODMR in quantum sensing, enabling faster screening of candidates with fewer resources.
Contribution
The authors develop novel quantum algorithms to efficiently identify ODMR-active defects, improving accuracy and reducing computational costs compared to existing methods.
Findings
Detects ISC rate imbalance with 105 qubits and 4.41×10^8 Toffoli gates
Enables faster screening of defect candidates for quantum sensing
Improves optical response evaluation schemes
Abstract
Spin defects in two-dimensional materials are a promising platform for quantum sensing. Simulating the defect's optical response and optically detected magnetic resonance (ODMR) contrast is key to identifying suitable candidates. However, existing simulation methods are typically unable to supply the required accuracy. Here, we propose two quantum algorithms to detect an imbalance in the triplet-to-singlet intersystem crossing (ISC) rates between excited states with the same and different spin projections -- a necessary condition for nonzero ODMR response. The lowest-cost approach evaluates whether the evolution of an state under the spin-orbit coupling induces ISC to , and also whether there is an imbalance in its intensity depending on the final state spin projection. The second approach works by comparing the emission spectrum of a spin defect with and without the…
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Taxonomy
TopicsIntegrated Circuits and Semiconductor Failure Analysis · Analytical Chemistry and Sensors · Electronic and Structural Properties of Oxides
