Field-Induced Boson Insulating States in a 2D Superconducting Electron Gas with Strong Spin-Orbit Scatterings
arXiv:2208.03714 · doi:10.1088/1361-648X/aca380
Abstract
The phenomenon of field-induced superconductor-to-insulator transitions observed experimentally in electron-doped SrTiO/LaAlO interfaces, analyzed recently by means of 2D superconducting fluctuations theory (Phys. Rev. B \textbf{104}, 054503 (2021)), is revisited with new insights associating it with the appearance at low temperatures of field-induced boson insulating states. Within the framework of the time-dependent Ginzburg-Landau functional approach, we pinpoint the origin of these states in field-induced extreme softening of fluctuation modes over a large region in momentum space, upon diminishing temperature, which drives Cooper-pair fluctuations to condense into mesoscopic puddles in real space. Dynamical quantum tunneling of Cooper-pair fluctuations out of these puddles, introduced within a phenomenological approach, which break into mobile single-electron states, contains the high-field resistance onset predicted by the exclusive boson theory.
arXiv admin note: substantial text overlap with arXiv:2201.01152
References in corpus (6)
- Electric Field Control of the LaAlO/SrTiO Interface Ground State
- Nature of the superconductor-insulator transition in disordered superconductors
- Quantum Metallicity on the High-Field Side of the Superconductor-Insulator Transition
- Link between the Superconducting Dome and Spin-Orbit Interaction in the (111) LaAlO/SrTiO Interface
- Microscopic analysis of the superconducting quantum critical point: Finite temperature crossovers in transport near a pair-breaking quantum phase transition
- Fluctuation conductivity of thin films and nanowires near a parallel-field-tuned superconducting quantum phase transition