Topological Superfluid Responses of Superconducting Dirac Semimetals
Jun-Ang Wang, Mohamed Assili, Panagiotis Kotetes

TL;DR
This paper reveals that topological properties of superconducting Dirac semimetals determine their superfluid stiffness and quantum capacitance, leading to universal topological quantization effects observable in graphene-superconductor hybrids.
Contribution
It introduces a topological framework linking superfluid responses to the topological charge of Dirac cones, unifying superfluid stiffness and quantum capacitance in 2D Dirac systems.
Findings
Superfluid stiffness proportional to topological charge.
Quantum capacitance linked to topological properties.
Topological responses resilient to strain and disorder.
Abstract
We demonstrate that topological constraints do not only dictate the geometric part of the superfluid stiffness, but can also govern the total superfluid stiffness. By introducing a general adiabatic approach for superfluid responses, we showcase such a possibility by proving that the stiffness of a superconducting Dirac cone in two dimensions (2D) is proportional to its topological charge. By relying on the emergent Lorentz invariance of Dirac electrons, we unify the superfluid stiffness and quantum capacitance in these systems. Based on this connection, we further predict a topological origin for the quantum capacitance of a Josephson junction where 2D massless Dirac electrons are sandwiched between two conventional superconductors. We show that the topological responses persist upon effecting strain, are resilient against weak disorder, and can be experimentally controlled via a…
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Taxonomy
TopicsTopological Materials and Phenomena · Graphene research and applications · Mechanical and Optical Resonators
