English

Pressure-Induced Rotational Symmetry Breaking in URu$_2$Si$_2$

Strongly Correlated Electrons 2019-01-10 v1

Abstract

Phase transitions and symmetry are intimately linked. Melting of ice, for example, restores translation invariance. The mysterious hidden order (HO) phase of URu2_2Si2_2 has, despite relentless research efforts, kept its symmetry breaking element intangible. Here we present a high-resolution x-ray diffraction study of the URu2_2Si2_2 crystal structure as a function of hydrostatic pressure. Below a critical pressure threshold pc3p_c\approx3 kbar, no tetragonal lattice symmetry breaking is observed even below the HO transition THO=17.5T_{HO}=17.5 K. For p>pcp>p_c, however, a pressure-induced rotational symmetry breaking is identified with an onset temperatures TOR100T_{OR}\sim 100 K. The emergence of an orthorhombic phase is found and discussed in terms of an electronic nematic order that appears unrelated to the HO, but with possible relevance for the pressure-induced antiferromagnetic (AF) phase. Existing theories describe the HO and AF phases through an adiabatic continuity of a complex order parameter. Since none of these theories predicts a pressure-induced nematic order, our finding adds an additional symmetry breaking element to this long-standing problem.

Keywords

Cite

@article{arxiv.1901.02494,
  title  = {Pressure-Induced Rotational Symmetry Breaking in URu$_2$Si$_2$},
  author = {J. Choi and O. Ivashko and N. Dennler and D. Aoki and K. von Arx and S. Gerber and O. Gutowski and M. H. Fischer and J. Strempfer and M. v. Zimmermann and J. Chang},
  journal= {arXiv preprint arXiv:1901.02494},
  year   = {2019}
}

Comments

6 pages, 4 figures and supplemental materials