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Pairing Obstructions in Topological Superconductors

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arxiv 2001.02682 v2 pith:LTVV6FXI submitted 2020-01-08 cond-mat.supr-con cond-mat.mes-hall

classification cond-mat.supr-concond-mat.mes-hall
keywords topologicalmajoranaphaseobstructionsposition-spaceseparationsuperconductorswannier
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The modern understanding of topological insulators is based on Wannier obstructions in position space. Motivated by this insight, we study topological superconductors from a position-space perspective. For a one-dimensional superconductor, we show that the wave function of an individual Cooper pair decays exponentially with separation in the trivial phase and polynomially in the topological phase. For the position-space Majorana representation, we show that the topological phase is characterized by a nonzero Majorana polarization, which captures an irremovable and quantized separation of Majorana Wannier centers from the atomic positions. We apply our results to diagnose second-order topological superconducting phases in two dimensions. Our work establishes a vantage point for the generalization of Topological Quantum Chemistry to superconductivity.

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  1. Phase-Space Approach to Wannier Pairing and Bogoliubov Orbitals in Square-Octagon Lattices

    cond-mat.supr-con 2024-12 reject novelty 3.0 of 10

    A reformulation of tight-binding models that shifts orbital symmetry into Bloch phase factors is applied to predict coexisting s± and s_z2 pairing in Lu2Fe3Si5, but the framework reduces to standard tight-binding and ...

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