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Published on: March 24, 2019
Strong peak in Tc of Sr2RuO4 under uniaxial pressure
Alexander Steppke1,2, Lishan Zhao3,2, Mark E Barber3,2
1Max Planck Institute for Chemical Physics of Solids, Nöthnitzer Str. 40, 01187 Dresden, Germany. steppke@cpfs.mpg.de steven.simon@physics.ox.ac.uk mackenzie@cpfs.mpg.de hicks@cpfs.mpg.de.
Abstract:
Sr2RuO4 is an unconventional superconductor that has attracted widespread study because of its high purity and the possibility that its superconducting order parameter has odd parity. We study the dependence of its superconductivity on anisotropic strain. Applying uniaxial pressures of up to ~1 gigapascals along a 〈100〉 direction (a axis) of the crystal lattice results in the transition temperature (Tc) increasing from 1.5 kelvin in the unstrained material to 3.4 kelvin at compression by ≈0.6%, and then falling steeply. Calculations give evidence that the observed maximum Tc occurs at or near a Lifshitz transition when the Fermi level passes through a Van Hove singularity, and open the possibility that the highly strained, Tc = 3.4 K Sr2RuO4 has an even-parity, rather than an odd-parity, order parameter.
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