Competing gauge fields and entropically driven spin liquid to spin liquid transition in non-Kramers pyrochlores

Author:

Lozano-Gómez Daniel12,Noculak Vincent34,Oitmaa Jaan5,Singh Rajiv R. P.6,Iqbal Yasir7ORCID,Reuther Johannes347,Gingras Michel J. P.1ORCID

Affiliation:

1. Department of Physics and Astronomy, University of Waterloo, Waterloo, ON N2L 3G1, Canada

2. Institut für Theoretische Physik and Würzburg-Dresden Cluster of Excellence ct.qmat, Technische Universität Dresden, Dresden 01062, Germany

3. Dahlem Center for Complex Quantum Systems and Fachbereich Physik, Freie Universität Berlin, Berlin 14195, Germany

4. Helmholtz-Zentrum Berlin für Materialien und Energie, Berlin 14109, Germany

5. School of Physics, The University of New South Wales, Sydney 2052, Australia

6. Department of Physics, University of California, Davis, CA 95616

7. Department of Physics and Quantum Centre of Excellence for Diamond and Emergent Materials, Indian Institute of Technology Madras, Chennai 600036, India

Abstract

Gauge theories are powerful theoretical physics tools that allow complex phenomena to be reduced to simple principles and are used in both high-energy and condensed matter physics. In the latter context, gauge theories are becoming increasingly popular for capturing the intricate spin correlations in spin liquids, exotic states of matter in which the dynamics of quantum spins never ceases, even at absolute zero temperature. We consider a spin system on a three-dimensional pyrochlore lattice where emergent gauge fields not only describe the spin liquid behavior at zero temperature but crucially determine the system’s temperature evolution, with distinct gauge fields giving rise to different spin liquid phases in separate temperature regimes. Focusing first on classical spins, in an intermediate temperature regime, the system shows an unusual coexistence of emergent vector and tensor gauge fields where the former is known from classical spin ice systems while the latter has been associated with fractonic quasiparticles, a peculiar type of excitation with restricted mobility. Upon cooling, the system transitions into a low-temperature phase where an entropic selection mechanism depopulates the degrees of freedom associated with the tensor gauge field, rendering the system spin-ice-like. We further provide numerical evidence that in the corresponding quantum model, a spin liquid with coexisting vector and tensor gauge fields has a finite window of stability in the parameter space of spin interactions down to zero temperature. Finally, we discuss the relevance of our findings for non-Kramers magnetic pyrochlore materials.

Funder

Canadian Government | Natural Sciences and Engineering Research Council of Canada

National Science Foundation

Simons Foundation

Canada Research Chairs

Deutsche Forschungsgemeinschaft

Publisher

Proceedings of the National Academy of Sciences

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