Pressure-induced electronic phase separation of magnetism and superconductivity in CrAs

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作者
Rustem Khasanov
Zurab Guguchia
Ilya Eremin
Hubertus Luetkens
Alex Amato
Pabitra K. Biswas
Christian Rüegg
Michael A. Susner
Athena S. Sefat
Nikolai D. Zhigadlo
Elvezio Morenzoni
机构
[1] Laboratory for Muon Spin Spectroscopy,Department of Quantum Matter Physics
[2] Paul Scherrer Institute,Materials Science and Technology Division
[3] Institut für Theoretische Physik III,undefined
[4] Ruhr-Universität Bochum,undefined
[5] Kazan (Volga region) Federal University,undefined
[6] Laboratory for Neutron Scattering and Imaging,undefined
[7] Paul Scherrer Institute,undefined
[8] University of Geneva,undefined
[9] Oak Ridge National Laboratory,undefined
[10] Solid State Physics Laboratory,undefined
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Scientific Reports | / 5卷
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摘要
The recent discovery of pressure (p) induced superconductivity in the binary helimagnet CrAs has raised questions on how superconductivity emerges from the magnetic state and on the mechanism of the superconducting pairing. In the present work the suppression of magnetism and the occurrence of superconductivity in CrAs were studied by means of muon spin rotation. The magnetism remains bulk up to p [inline-graphic not available: see fulltext] 3.5 kbar while its volume fraction gradually decreases with increasing pressure until it vanishes at p [inline-graphic not available: see fulltext] 7 kbar. At 3.5 kbar superconductivity abruptly appears with its maximum Tc [inline-graphic not available: see fulltext] 1.2 K which decreases upon increasing the pressure. In the intermediate pressure region (3.5 [inline-graphic not available: see fulltext] p [inline-graphic not available: see fulltext] 7 kbar) the superconducting and the magnetic volume fractions are spatially phase separated and compete for phase volume. Our results indicate that the less conductive magnetic phase provides additional carriers (doping) to the superconducting parts of the CrAs sample thus leading to an increase of the transition temperature (Tc) and of the superfluid density (ρs). A scaling of ρs with [inline-graphic not available: see fulltext] as well as the phase separation between magnetism and superconductivity point to a conventional mechanism of the Cooper-pairing in CrAs.
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