Quantum Decoherence of the Central Spin in a Sparse System of Dipolar Coupled Spins
Wayne M. Witzel, Malcolm S. Carroll, Lukasz Cywinski, S. Das Sarma

TL;DR
This paper develops a microscopic cluster expansion method to analyze quantum decoherence of a central spin in a dipolar coupled spin system, revealing localization effects that enable accurate predictions of spin echo signals.
Contribution
It adapts cluster methods to treat all-dipolar spin systems with comparable interaction strengths, demonstrating convergence and localization effects in decoherence analysis.
Findings
Cluster methods are effective for all-dipolar systems.
Disorder induces localization of flip-flop dynamics.
Accurate spin echo predictions are possible with small clusters.
Abstract
The central spin decoherence problem has been researched for over 50 years in the context of both nuclear magnetic resonance and electron spin resonance. Until recently, theoretical models have employed phenomenological stochastic descriptions of the bath-induced noise. During the last few years, cluster expansion methods have provided a microscopic, quantum theory to study the spectral diffusion of a central spin. These methods have proven to be very accurate and efficient for problems of nuclear-induced electron spin decoherence in which hyperfine interactions with the central electron spin are much stronger than dipolar interactions among the nuclei. We provide an in-depth study of central spin decoherence for a canonical scale-invariant all-dipolar spin system. We show how cluster methods may be adapted to treat this problem in which central and bath spin interactions are of…
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