Using thermal boundary conditions to engineer the quantum state of a bulk magnet
Abstract
The degree of contact between a system and the external environment can alter dramatically its proclivity to quantum mechanical modes of relaxation. We show that controlling the thermal coupling of cubic centimeter-sized crystals of the Ising magnet to a heat bath can be used to tune the system between a glassy state dominated by thermal excitations over energy barriers and a state with the hallmarks of a quantum spin liquid. Application of a magnetic field transverse to the Ising axis introduces both random magnetic fields and quantum fluctuations, which can retard and speed the annealing process, respectively, thereby providing a mechanism for continuous tuning between the destination states. The non-linear response of the system explicitly demonstrates quantum interference between internal and external relaxation pathways.
Keywords
Cite
@article{arxiv.1402.3248,
title = {Using thermal boundary conditions to engineer the quantum state of a bulk magnet},
author = {M. A. Schmidt and D. M. Silevitch and G. Aeppli and T. F. Rosenbaum},
journal= {arXiv preprint arXiv:1402.3248},
year = {2014}
}
Comments
23 pages, 4 figures. Accepted for publication in PNAS