English

Identification of nematic superconductivity from the upper critical field

Superconductivity 2016-12-15 v4

Abstract

Recent nuclear magnetic resonance and specific heat measurements have provided concurring evidence of spontaneously broken rotational symmetry in the superconducting state of the doped topological insulator Cux_xBi2_2Se3_3. This suggests that the pairing symmetry corresponds to a two-dimensional representation of the D3dD_{3d} crystal point group, and that Cux_xBi2_2Se3_3 is a nematic superconductor. In this work, we present a comprehensive study of the upper critical field Hc2H_{c2} of nematic superconductors within Ginzburg-Landau (GL) theory. Contrary to typical GL theories which have an emergent U(1) rotational symmetry obscuring the discrete symmetry of the crystal, the theory of two-component superconductors in trigonal crystals reflects the true D3dD_{3d} crystal symmetry. This has direct implications for the upper critical field. First, Hc2H_{c2} of trigonal superconductors exhibits a sixfold anisotropy in the basal plane. Second, when the degeneracy of the two components is lifted by, e.g., uniaxial strain, Hc2H_{c2} exhibits a twofold anisotropy with characteristic angle and temperature dependence. Our thorough study shows that measurement of the upper critical field is a direct method of detecting nematic superconductivity, which is directly applicable to recently-discovered trigonal superconductors Cux_xBi2_2Se3_3, Srx_xBi2_2Se3_3, Nbx_xBi2_2Se3_3, and Tlx_xBi2_2Se3_3.

Keywords

Cite

@article{arxiv.1603.03406,
  title  = {Identification of nematic superconductivity from the upper critical field},
  author = {Jörn W. F. Venderbos and Vladyslav Kozii and Liang Fu},
  journal= {arXiv preprint arXiv:1603.03406},
  year   = {2016}
}

Comments

6 pages, 2 figs; 20 pages supplemental material; published version