Visualizing superconductivity in an inversion-symmetry-broken doped Weyl semimetal
arXiv:2108.09630
Abstract
The Weyl semimetal MoTe offers a rare opportunity to study the interplay between Weyl physics and superconductivity. Recent studies have found that Se substitution can boost the superconductivity up to 1.5K, but suppress the Td structure phase that is essential for the emergence of Weyl state. A microscopic understanding of possible coexistence of enhanced superconductivity and the Td phase has not been established so far. Here, we use scanning tunneling microscopy (STM) to study a optimally doped new superconductor MoTeSe with bulk Tc ~ 1.5K. By means of quasiparticle interference imaging, we identify the existence of low temperature Td phase with broken inversion symmetry where superconductivity globally coexists. Consistently, we find that the superconducting coherence length, extracted from both the upper critical field and the decay of density of states near a vortex, is much larger than the characteristic length scale of existing dopant derived chemical disorder. Our findings of robust superconductivity arising from a Weyl semimetal normal phase in MoTeSe, makes it a promising candidate for realizing topological superconductivity.
References in corpus (5)
- Superconductivity of doped Weyl semimetals: finite-momentum pairing and electronic analogues of the 3He-A phase
- Time-reversal invariant topological superconductivity in doped Weyl semimetals
- Activation of new Raman modes by inversion symmetry breaking in type II Weyl semimetal candidate T'-MoTe2
- Anticorrelation between polar lattice instability and superconductivity in the Weyl semimetal candidate MoTe2
- Unexpected weak spatial variation of local density of sates induced by individual Co impurity atoms in Na(Fe{1-x}Cox)As as revealed by scanning tunneling spectroscopy