English

Field-Orientation Effect on Ferro-Quadrupole Order in PrTi2Al20

Strongly Correlated Electrons 2020-03-10 v3

Abstract

Ferro-quadrupole (FQ) order in the non-Kramers Γ3\Gamma_3 doublet system PrTi2_2Al20_{20} has been investigated via angle-resolved measurements of the specific heat, rotational magnetocaloric effect, and entropy, under a rotating magnetic field within the (11ˉ0)(1\bar{1}0) plane. The FQ transition occurring at 2 K is robust when the magnetic field BB is applied precisely along the [111][111] direction. By contrast, the magnetic field of larger than 1 T tilted away from the [111][111] direction sensitively changes the FQ transition to a crossover. The energy gap between the ground and first-excited states in the FQ order increases remarkably with the magnetic field in B[001]B \parallel [001], but hardly depends on the magnetic-field strength, at least up to 5 T, in the field orientation between the [111][111] and [110][110] axes. These features can be reproduced by using a phenomenological model for FQ order assuming an anisotropic field-dependent interaction between quadrupoles, which has been recently proposed to explain the field-induced first-order phase transition in PrTi2_2Al20_{20}. The present study demonstrates the great potential of the field-angle-resolved measurements for evaluating possible scenarios for multipole orders.

Keywords

Cite

@article{arxiv.1912.11650,
  title  = {Field-Orientation Effect on Ferro-Quadrupole Order in PrTi2Al20},
  author = {Shunichiro Kittaka and Takanori Taniguchi and Kazumasa Hattori and Shota Nakamura and Toshiro Sakakibara and Masashi Takigawa and Masaki Tsujimoto and Akito Sakai and Yosuke Matsumoto and Satoru Nakatsuji},
  journal= {arXiv preprint arXiv:1912.11650},
  year   = {2020}
}

Comments

5 pages, 5 figures (main text) + 4 pages, 2 figures (supplemental material), accepted for publication in J. Phys. Soc. Jpn

R2 v1 2026-06-23T12:56:21.254Z