Quantum transitions from superfluid to insulating phases in disordered Bose systems
A. V. Syromyatnikov, F. D. Timkovskii

TL;DR
This paper investigates quantum phase transitions in disordered Bose systems, specifically from superfluid to insulating phases, using scaling and hydrodynamic theories to derive critical exponents and universal behaviors.
Contribution
It introduces a unified scaling framework for various disorder-induced insulating phases in Bose systems and derives new relations among critical exponents.
Findings
Derived relations: η=2−z and β=νd/2.
Identified superuniversal density of states near transitions.
Showed z=d/2 for Mott-glass transition.
Abstract
By the example of Heisenberg -dimensional disordered non-frustrated antiferromagnets, we discuss quantum transitions at from magnetically ordered (superfluid) to various disorder-induced insulating phases (Bose-glass, Mott-glass, etc.) in Bose systems with quenched disorder. We perform a scaling consideration as well as a discussion based on the hydrodynamic description of long-wavelength excitations and on the assumption that the ordered part of the system shows fractal properties near the transition point. We propose that the scaling ansatz for the singular part of the free energy suggested before for the transition to the Bose-glass phase is applicable also for other transitions if the quenched disorder does not produce a local imbalance in sublattices magnetizations. We show using the scaling consideration that and , where , , and…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Quantum, superfluid, helium dynamics · Atomic and Subatomic Physics Research
