Superfluid phases of $^3$He in nano-scale channels
J. J. Wiman, J. A. Sauls

TL;DR
This paper predicts new superfluid phases of $^3$He confined in nano-scale channels, revealing how strong confinement and boundary conditions alter the phase diagram and induce broken symmetry phases detectable via NMR spectroscopy.
Contribution
It extends the strong-coupling Ginzburg-Landau theory to accurately model superfluid $^3$He under confinement, identifying four stable phases and their dependence on pressure, temperature, and boundary conditions.
Findings
Four stable superfluid phases identified under confinement.
Boundary conditions significantly influence phase stability.
Distinct NMR signatures predicted for each phase.
Abstract
Confinement of superfluid He on length scales comparable to the radial size of the p-wave Cooper pairs can greatly alter the phase diagram by stabilizing broken symmetry phases not observed in bulk He. We consider superfluid He confined within long cylindrical channels of radius , and report new theoretical predictions for the equilibrium superfluid phases under strong confinement. The results are based on the strong-coupling formulation of Ginzburg-Landau theory with precise numerical minimization of the free energy functional to identify the equilibrium phases and their regions of stability. We introduce an extension of the standard GL strong-coupling theory that accurately accounts for the phase diagram at high pressures, including the tri-crital point and line defining the region of stability for the bulk A-phase. We also introduce tuneable…
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