A Quenched Disorder in the Quantum‐Critical Superconductor CeCoIn5

Author:

Jung Soon‐Gil1ORCID,Jang Harim2,Kim Jihyun2,Park Jin‐Hong2,Lee Sangyun3,Seo Soonbeom4,Bauer Eric D.3,Park Tuson5

Affiliation:

1. Department of Physics Education Sunchon National University Suncheon 57922 South Korea

2. Department of Physics Sungkyunkwan University Suwon 16419 South Korea

3. Los Alamos National Laboratory Alamos NM 87545 USA

4. Department of Physics Changwon National University Changwon 51140 South Korea

5. Center for Quantum Materials and Superconductivity (CQMS) Department of Physics Sungkyunkwan University Suwon 16419 South Korea

Abstract

AbstractEmergent inhomogeneous electronic phases in metallic quantum systems are crucial for understanding high‐Tc superconductivity and other novel quantum states. In particular, spin droplets introduced by nonmagnetic dopants in quantum‐critical superconductors (QCSs) can lead to a novel magnetic state in superconducting phases. However, the role of disorders caused by nonmagnetic dopants in quantum‐critical regimes and their precise relation with superconductivity remain unclear. Here, the systematic evolution of a strong correlation between superconductive intertwined electronic phases and antiferromagnetism in Cd‐doped CeCoIn5 is presented by measuring current–voltage characteristics under an external pressure. In the low‐pressure coexisting regime where antiferromagnetic (AFM) and superconducting (SC) orders coexist, the critical current (Ic) is gradually suppressed by the increasing magnetic field, as in conventional type‐II superconductors. At pressures higher than the critical pressure where the AFM order disappears, Ic remarkably shows a sudden spike near the irreversible magnetic field. In addition, at high pressures far from the critical pressure point, the peak effect is not suppressed, but remains robust over the whole superconducting region. These results indicate that magnetic islands are protected around dopant sites despite being suppressed by the increasingly correlated effects under pressure, providing a new perspective on the role of quenched disorders in QCSs.

Funder

Ministry of Science and ICT, South Korea

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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