Pressure-induced superconductivity in the three-dimensional Dirac semimetal Cd3As2
arXiv:1502.02509
Abstract
The recently discovered Dirac and Weyl semimetals are new members of topological materials. Starting from them, topological superconductivity may be achieved, e.g. by carrier doping or applying pressure. Here we report high-pressure resistance and X-ray diffraction study of the three-dimensional topological Dirac semimetal Cd3As2. Superconductivity with Tc ~ 2.0 K is observed at 8.5 GPa. The Tc keeps increasing to about 4.0 K at 21.3 GPa, then shows a nearly constant pressure dependence up to the highest pressure 50.9 GPa. The X-ray diffraction measurements reveal a structure phase transition around 3.5 GPa. Our observation of superconductivity in pressurized topological Dirac semimetal Cd3As2 provides a new candidate for topological superconductor, as argued in a recent point contact study and a theoretical work.
20 pages, 5 figures
References in corpus (7)
- Pressure induced Superconductivity in Topological Compound Bi2Te3
- Observation of superconductivity in 3D Dirac semimetal Cd3As2 crystal
- Local Measurements of the Superconducting Pairing Symmetry in CuxBi2Se3
- Limits of the upper critical field in dirty two-gap superconductors
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- Superconductivity in doped Dirac semimetals
- Superconductivity in topologically nontrivial material Au2Pb
- Scalable Growth of High Mobility Dirac Semimetal Cd3As2 Microbelts
- Evidence for pressure-induced node-pair annihilation in Cd3As2
- Uncovering the behavior of Hf2Te2P and the candidate Dirac metal Zr2Te2P
- Magnetotransport properties of Cd3As2 nanostructures
- Pressure-induced reconstructive phase transition in CdAs