Cluster-correlation expansion for studying decoherence of clock transitions in spin baths
Geng-Li Zhang, Wen-Long Ma, Ren-Bao Liu

TL;DR
This paper introduces a modified cluster-correlation expansion (CCE) method to accurately study decoherence of clock transitions in spin baths, overcoming convergence issues caused by long-range interactions.
Contribution
The authors develop a new modified CCE approach that effectively accounts for long-range interactions in clock transition decoherence, enabling rapid convergence.
Findings
Modified CCE converges rapidly for clock transitions.
Method successfully applied to NV centers and double quantum dots.
Provides insights into decoherence mechanisms in spin baths.
Abstract
The clock transitions (CTs) of central spins have long coherence times because their frequency fluctuations vanish in the linear order of external field noise (such as Overhauser fields from nuclear spin baths). Therefore, CTs are useful for quantum technologies. Also, the quadratic dependence of frequencies on noises makes the CT decoherence an interesting physics problem. Thus we are motivated to study the decoherence of CTs. We consider noise from spin baths, which is one of the most relevant mechanisms of qubit decoherence. Various quantum many-body methods have been developed to study the decoherence of a central spin in spin baths. In particular, the cluster-correlation expansion (CCE) systematically accounts for the many-body correlations that cause the central spin decoherence. However, the CCE can not be straightforwardly applied to CTs in spin baths, for the expansion may fail…
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