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Field-induced transition within the superconducting state of CeRh2As2
S Khim1,2, J F Landaeta2, J Banda3,2
1Department of Physics, University of Wisconsin-Milwaukee, Milwaukee, WI 53201, USA. elena.hassinger@cpfs.mpg.de seunghyun.khim@cpfs.mpg.de.
Abstract:
Materials with multiple superconducting phases are rare. Here, we report the discovery of two-phase unconventional superconductivity in CeRh2As2 Using thermodynamic probes, we establish that the superconducting critical field of its high-field phase is as high as 14 tesla, even though the transition temperature is only 0.26 kelvin. Furthermore, a transition between two different superconducting phases is observed in a c axis magnetic field. Local inversion-symmetry breaking at the cerium sites enables Rashba spin-orbit coupling alternating between the cerium sublayers. The staggered Rashba coupling introduces a layer degree of freedom to which the field-induced transition and high critical field seen in experiment are likely related.
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