English

Pressure-induced unusual metallic state in EuNiO$_3$

Strongly Correlated Electrons 2015-05-19 v1

Abstract

The perovskite antiferromagnetic (TNT_{\rm N} \sim 220 K) insulator EuNiO3_3 undergoes at ambient pressure a metal-to-insulator transition at TMIT_{\rm MI} = 460 K which is associated with a simultaneous orthorhombic-to-monoclinic distortion, leading to charge disproportionation. We have investigated the change of the structural and magnetic properties of EuNiO3_3 with pressure (up to \sim 20 GPa) across its quantum critical point (QCP) using low-temperature synchrotron angle-resolved x-ray diffraction and 151^{151}Eu nuclear forward scattering of synchrotron radiation, respectively. With increasing pressure we find that after a small increase of TNT_{\rm N} (pp \leq 2 GPa) and the induced magnetic hyperfine field BhfB_{\rm hf} at the 151^{151}Eu nucleus (pp \leq 9.7 GPa), both TNT_{\rm N} and BhfB_{\rm hf} are strongly reduced and finally disappear at pcp_{\rm c} \cong 10.5 GPa, indicating a magnetic QCP at pcp_{\rm c}. The analysis of the structural parameters up to 10.5 GPa reveals no change of the lattice symmetry within the experimental resolution. Since the pressure-induced insulator-to-metal transition occurs at pIMp_{\rm IM} \cong 6 GPa, this result implies the existence of an antiferromagnetic metallic state between 6 and 10.5 GPa. We further show from the analysis of the reported high pressure electrical resistance data on EuNiO3_3 at low-temperatures that in the vicinity of the QCP the system behaves as non-Fermi-liquid, with the resistance changing as TnT^{\rm n}, with n=1.6, whereas it becomes a normal Fermi-liquid, n = 2, for pressures above \sim15 GPa. On the basis of the obtained data a magnetic phase diagram in the (pp, TT) space is suggested.

Keywords

Cite

@article{arxiv.1505.04566,
  title  = {Pressure-induced unusual metallic state in EuNiO$_3$},
  author = {Hisao Kobayashi and Shugo Ikeda and Yoshitaka Yoda and Naohisa Hirao and Yasuo Ohishi and J. A. Alonso and M. J. Martinez-Lope and R. Lengsdorf and D. I. Khomskii and M. M. Abd-Elmeguid},
  journal= {arXiv preprint arXiv:1505.04566},
  year   = {2015}
}

Comments

accepted in Physical Review B

R2 v1 2026-06-22T09:36:10.712Z