Thermalization and many-body localization in systems under dynamic nuclear polarization
arXiv:1602.01931 · doi:10.1103/PhysRevB.94.014203
Abstract
We study the role of dipolar interactions in the standard protocol used to achieve dynamic nuclear polarization (DNP). In the so-called spin-temperature regime, where the interactions establish an effective thermodynamic behavior in the out-of-equilibrium stationary state, we provide numerical predictions for the level of hyperpolarization. We show that nuclear spins equilibrate to the effective spin-temperature established among the electron spins of radicals, as expected from the quantum theory of thermalization. Moreover, we present an analytical technique to estimate the spin temperature, and thus, the nuclear hyperpolarization in the steady state, as a function of interaction strength and quenched disorder. This reproduces both our numerical data and experimental results. Our central finding is that the nuclear hyperpolarization increases steadily upon reducing the interaction strength (by diluting the radical density). Interestingly, the highest polarization is reached at a point where the establishment of a spin temperature is just about to break down due to the incipient many-body localization transition in the electron spin system.
12 pages (+ 3 pages of appendix), 8 figures
References in corpus (9)
- Thermalization and its mechanism for generic isolated quantum systems
- Many body localization and thermalization in quantum statistical mechanics
- Phenomenology of fully many-body-localized systems
- Integrals of motion in the Many-Body localized phase
- Constructing local integrals of motion in the many-body localized phase
- Ergodicity breaking in a model showing many-body localization
- Energy transport in the Anderson insulator
- Dynamic nuclear polarization as kinetically constrained diffusion
- Role of the glassy dynamics and thermal mixing in the dynamic nuclear polarization and relaxation mechanisms of pyruvic acid
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