| Literature DB >> 33653958 |
You-Sheng Li1,2, Naoki Kikugawa3, Dmitry A Sokolov1, Fabian Jerzembeck1, Alexandra S Gibbs4, Yoshiteru Maeno5, Clifford W Hicks1, Jörg Schmalian6,7, Michael Nicklas8, Andrew P Mackenzie8,2.
Abstract
A key question regarding the unconventional superconductivity of [Formula: see text] remains whether the order parameter is single- or two-component. Under a hypothesis of two-component superconductivity, uniaxial pressure is expected to lift their degeneracy, resulting in a split transition. The most direct and fundamental probe of a split transition is heat capacity. Here, we report measurement of heat capacity of samples subject to large and highly homogeneous uniaxial pressure. We place an upper limit on the heat-capacity signature of any second transition of a few percent of that of the primary superconducting transition. The normalized jump in heat capacity, [Formula: see text], grows smoothly as a function of uniaxial pressure, favoring order parameters which are allowed to maximize in the same part of the Brillouin zone as the well-studied van Hove singularity. Thanks to the high precision of our measurements, these findings place stringent constraints on theories of the superconductivity of [Formula: see text].Entities:
Keywords: heat capacity; superconductivity; uniaxial pressure
Year: 2021 PMID: 33653958 DOI: 10.1073/pnas.2020492118
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205