Electro-nuclear quantum phase transition in TmVO <sub>4</sub>

M Mark P. Zic (Geballe Laboratory for Advanced Materials, Stanford University) C Chao Huan (Department of Physics, University of Florida) N Nicolas Silva (Department of Physics, University of Florida) Y Yuntian Li (Geballe Laboratory for Advanced Materials and Department of Applied Physics) M Mark W. Meisel (Department of Physics, University of Florida) I Ian R. Fisher (Department of Applied Physics)

Abstract

Hyperfine interactions couple nuclear and electronic degrees of freedom. The present work explores how hyperfine coupling within the Tm ions in TmVO 4 single crystals affects an electronic ferroquadrupole ordered ground state and its associated field-tuned quantum phase transition. As temperature is progressively reduced through the hyperfine energy scale, the nuclear moments reduce the critical field for the electronic order, resulting in a dramatic back-bending of the phase boundary delineating the ferroquadrupole order. This behavior is well described by a single-ion semiclassical mean-field model down to approximately 50 mK. Analysis of the effective Hamiltonian leads to a prediction of spontaneous nuclear magnetic order mediated by 4 f electrons, which in principle persists with the application of orthogonal antisymmetric strain, yielding a proposed electro-nuclear tetracritical point.

Article Details

Volume / Issue Vol. 123, Issue 30
Published July 28, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

M

Mark P. Zic

Geballe Laboratory for Advanced Materials, Stanford University

C

Chao Huan

Department of Physics, University of Florida

N

Nicolas Silva

Department of Physics, University of Florida

Y

Yuntian Li

Geballe Laboratory for Advanced Materials and Department of Applied Physics

M

Mark W. Meisel

Department of Physics, University of Florida

I

Ian R. Fisher

Department of Applied Physics