English

Frequency Extension to THz Range in High Pressure ESR System and Its Application to Shastry-Sutherland Model Compound SrCu$_{2}$(BO$_{3}$)$_{2}$

Materials Science 2018-02-21 v1 Other Condensed Matter

Abstract

We have made a survey of ceramics for the inner parts of the transmission-type pressure cell to achieve the high pressure and the high transmission in THz range. By using the optimal combination of ZrO2_{2}-based ceramic and Al2_{2}O3_{3} ceramic, we have succeeded in obtaining the pressure up to 1.5 GPa and the frequency region up to 700 GHz simultaneously. We show the high-pressure ESR results of Shastry-Sutherland compound SrCu2_{2}(BO3_{3})2_{2} as an application. We observed the direct ESR transition modes between the singlet ground state and the triplet excited states up to the pressure of 1.51 GPa successfully, and obtained the precise pressure dependence of the gap energy. The gap energy is directly proved to be suppressed by the pressure. Moreover, we found that the system approaches the quantum critical point with pressure by comparing the obtained data with the theory. This result also shows the usefulness of high-pressure ESR measurement in THz region to study quantum spin systems.

Keywords

Cite

@article{arxiv.1505.03995,
  title  = {Frequency Extension to THz Range in High Pressure ESR System and Its Application to Shastry-Sutherland Model Compound SrCu$_{2}$(BO$_{3}$)$_{2}$},
  author = {Hitoshi Ohta and Takahiro Sakurai and Ryosuke Matsui and Kohei Kawasaki and Yuki Hirao and Susumu Okubo and Kazuyuki Matsubayashi and Yoshiya Uwatoko and Kazutaka Kudo and Yoji Koike},
  journal= {arXiv preprint arXiv:1505.03995},
  year   = {2018}
}