APS Logo

Strain-dependent superconductivity in RuO<sub>2</sub>

ORAL

Abstract

Recent discovery of superconductivity in strained (110)-oriented RuO2 films grown on TiO2 (110) single-crystal substrates, with a superconducting transition temperature Tc of 2 K, renewed interest in this material. First-principles calculations revealed an enhancement of the density of states and softening of the phonon modes upon (110)-strain. Does RuO2 become superconducting under different strain conditions? We study strained (100)-oriented RuO2 thin films grown on TiO2 (100) single-crystal substrates. While our density functional theory predicts the Tc of strained RuO2 (100) films to be higher than the RuO2 (110) films, the transport measurements find the Tc to be about 1 K in strained RuO2 (100) films grown on TiO2 (100) substrates. Nonetheless, the thickness dependence of the Tc follows a similar trend in both cases. Informed by the experimental results including angle-resolved photoemission spectroscopy, we further explore the strain-dependence of the electronic and vibrational structure of transition-metal oxides from first principles.

Publication: Planned paper: Strain-induced Superconductivity in RuO2 (100) thin-films, Neha Wadehra Benjamin Z. Gregory, Shuyuan Zhang, Noah Schnitzer, Yusuke Iguchi, Evan Li, Betül Pamuk, Lena F. Kourkoutis, Andrej Singer, Kyle M. Shen, and Darrell G. Schlom<br>Previous publication: Strain-stabilized superconductivity, J. P. Ruf, H. Paik, N. J. Schreiber, H. P. Nair, L. Miao, J. K. Kawasaki, J. N. Nelson, B. D. Faeth, Y. Lee, B. H. Goodge, B. Pamuk, C. J. Fennie, L. F. Kourkoutis, D. G. Schlom & K. M. Shen, Nat. Commun. 12, 59 (2021).

Presenters

  • Betul Pamuk

    Williams College

Authors

  • Betul Pamuk

    Williams College

  • Neha Wadehra

    Cornell University

  • Rauan Kaldybayev

    Williams College

  • Benjamin Z Gregory

    Cornell University, Department of Physics, Cornell University

  • Shuyuan Zhang

    Cornell University

  • Noah Schnitzer

    Cornell University

  • Yusuke Iguchi

    Stanford University

  • Evan Li

    Cornell University

  • Lena F Kourkoutis

    Cornell University

  • Andrej Singer

    Cornell University, Department of Materials Science and Engineering, Cornell University

  • Kyle M Shen

    Cornell University

  • Darrell G Schlom

    Cornell University, Platform for the Accelerated Realization, Analysis, and Discovery of Interface Materials (PARADIM), Cornell University