English

Hidden and Hastatic Orders in URu2Si2

Strongly Correlated Electrons 2014-08-26 v1

Abstract

The hidden order developing below 17.5K in the heavy fermion material URu2Si2 has eluded identification for over twenty five years. This paper will review the recent theory of ``hastatic order,'' a novel two-component order parameter capturing the hybridization between half-integer spin (Kramers) conduction electrons and the non-Kramers 5f^2 Ising local moments, as strongly indicated by the observation of Ising quasiparticles in de Haas-van Alphen measurements. Hastatic order differs from conventional magnetism as it is a spinor order that breaks both single and double time-reversal symmetry by mixing states of different Kramers parity. The broken time-reversal symmetry simply explains both the pseudo-Goldstone mode between the hidden order and antiferromagnetic phases and the nematic order seen in torque magnetometry. The spinorial nature of the hybridization also explains how the Kondo effect gives a phase transition, with the hybridization gap turning on at the hidden order transition as seen in scanning tunneling microscopy. Hastatic order also has a number of new predictions: a basal-plane magnetic moment of order .01\mu_B, a gap to longitudinal spin fluctuations that vanishes continuously at the first order antiferromagnetic transition and a narrow resonant nematic feature in the scanning tunneling spectra.

Keywords

Cite

@article{arxiv.1403.3422,
  title  = {Hidden and Hastatic Orders in URu2Si2},
  author = {Rebecca Flint and Premala Chandra and Piers Coleman},
  journal= {arXiv preprint arXiv:1403.3422},
  year   = {2014}
}

Comments

Invited talk at SCES 2013 (Tokyo, Japan)

R2 v1 2026-06-22T03:26:29.495Z