Critical Thermalization of a Disordered Dipolar Spin System in Diamond

Georg Kucsko(Harvard University), Soonwon Choi(Harvard University), Jeong‐Mo Choi(Harvard University), Peter C. Maurer(Stanford University), Hengyun Zhou(Harvard University), Renate Landig(Harvard University), Hitoshi Sumiya(Sumitomo Electric Industries (Japan)), Shinobu Onoda(National Institutes for Quantum and Radiological Science and Technology), Junichi Isoya(University of Tsukuba), Fedor Jelezko(Universität Ulm), Eugene Demler(Harvard University), Norman Y. Yao(University of California, Berkeley), M. D. Lukin(Harvard University)
Physical Review Letters
July 9, 2018
Cited by 181Open Access
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Abstract

Statistical mechanics underlies our understanding of macroscopic quantum systems. It is based on the assumption that out-of-equilibrium systems rapidly approach their equilibrium states, forgetting any information about their microscopic initial conditions. This fundamental paradigm is challenged by disordered systems, in which a slowdown or even absence of thermalization is expected. We report the observation of critical thermalization in a three dimensional ensemble of ∼10^{6} electronic spins coupled via dipolar interactions. By controlling the spin states of nitrogen vacancy color centers in diamond, we observe slow, subexponential relaxation dynamics and identify a regime of power-law decay with disorder-dependent exponents; this behavior is modified at late times owing to many-body interactions. These observations are quantitatively explained by a resonance counting theory that incorporates the effects of both disorder and interactions.


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