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Topological Superconductivity in Metal/Quantum-Spin-Ice Heterostructures

Strongly Correlated Electrons 2017-11-21 v1 Materials Science Superconductivity

Abstract

The original proposal to achieve superconductivity by starting from a quantum spin-liquid (QSL) and doping it with charge carriers, as proposed by Anderson in 1987, has yet to be realized. Here we propose an alternative strategy: use a QSL as a substrate for heterostructure growth of metallic films to design exotic superconductors. By spatially separating the two key ingredients of superconductivity, i.e., charge carriers (metal) and pairing interaction (QSL), the proposed setup naturally lands on the parameter regime conducive to a controlled theoretical prediction. Moreover, the proposed setup allows us to "customize" electron-electron interaction imprinted on the metallic layer. The QSL material of our choice is quantum spin ice well-known for its emergent gauge-field description of spin frustration. Assuming the metallic layer forms an isotropic single Fermi pocket, we predict that the coupling between the emergent gauge-field and the electrons of the metallic layer will drive topological odd-parity pairing. We further present guiding principles for materializing the suitable heterostructure using ab initio calculations and describe the band structure we predict for the case of Y2_2Sn2x_{2-x}Sbx_xO7_7 grown on the (111) surface of Pr2_2Zr2_2O7_7. Using this microscopic information, we predict topological odd-parity superconductivity at a few Kelvin in this heterostructure, which is comparable to the TcT_c of the only other confirmed odd-parity superconductor Sr2_2RuO4_4.

Keywords

Cite

@article{arxiv.1603.02692,
  title  = {Topological Superconductivity in Metal/Quantum-Spin-Ice Heterostructures},
  author = {Jian-Huang She and Choong H. Kim and Craig J. Fennie and Michael J. Lawler and Eun-Ah Kim},
  journal= {arXiv preprint arXiv:1603.02692},
  year   = {2017}
}

Comments

13 papers, 3 figures + 30 pages of supplemental material

R2 v1 2026-06-22T13:06:48.725Z