Particle-hole symmetry reveals failed superconductivity in the metallic phase of two-dimensional superconducting films
arXiv:1712.00947 · doi:10.1126/sciadv.1700612
Abstract
Electrons confined to two dimensions display an unexpected diversity of behaviors as they are cooled to absolute zero. Noninteracting electrons are predicted to eventually "localize" into an insulating ground state, and it has long been supposed that electron correlations stabilize only one other phase: superconductivity. However, many two-dimensional (2D) superconducting materials have shown surprising evidence for metallic behavior, where the electrical resistivity saturates in the zero-temperature limit, the nature of this unexpected metallic state remains under intense scrutiny. We report electrical transport properties for two disordered 2D superconductors, indium oxide and tantalum nitride, and observe a magnetic field-tuned transition from a true superconductor to a metallic phase with saturated resistivity. This metallic phase is characterized by a vanishing Hall resistivity, suggesting that it retains particle-hole symmetry from the disrupted superconducting state.
References in corpus (4)
- Theory of quantum metal to superconductor transitions in highly conducting systems
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- Dissipation, topology, and quantum phase transition in a one-dimensional Joesphson junction array
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- Structural dynamics in thermal-treatment of amorphous indium-oxide films
- How magnetic field can transform a superconductor into a Bose metal
- Vanishing Hall Conductance in the Phase Glass Bose Metal at Zero Temperature
- Dual Universality and Unconventional Phase Diagram of a Clean 2D Superconductor with Tunable Disorders