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The Vortex Phase Diagram of Rotating Superfluid 3^3He-B

Published 12 Aug 2019 in cond-mat.supr-con | (1908.04190v2)

Abstract: We present the first theoretical calculation of the pressure-temperature-field phase diagram for the vortex phases of rotating superfluid <sup>3<sup>3He-B. Based on a strong-coupling extension of the Ginzburg-Landau theory that accounts for the relative stability of the bulk A and B phases of <sup>3<sup>3He at all pressures, we report calculations for the internal structure and free energies of distinct broken-symmetry vortices in rotating superfluid <sup>3<sup>3He-B. Theoretical results for the equilibrium vortex phase diagram in zero field and an external field of $H=284\,\mbox{G}$ parallel to the rotation axis, H⃗∥Ω⃗\vec{H}\parallel\vec{\Omega}, are reported, as well as the supercooling transition line, T<sup>∗</sup>v(p,H)T<sup>{*}_</sup> {v} (p,H). In zero field the vortex phases of <sup>3<sup>3He-B are separated by a first-order phase transition line Tv(p)T_ {v} (p) that terminates on the bulk critical line Tc(p)T_{c}(p) at a triple point. The low-pressure, low-temperature phase is characterized by an array of singly-quantized vortices that spontaneously breaks axial rotation symmetry, exhibits anisotropic vortex currents and an axial current anomaly (D-core phase). The high-pressure, high-temperature phase is characterized by vortices with both bulk A phase and β\beta phase in their cores (A-core phase). We show that this phase is metastable and supercools down to a minimum temperature, T<sup>∗</sup>v(p,H)T<sup>{*}_</sup> {v} (p,H), below which it is globally unstable to an array of D-core vortices. For $H\gtrsim 60\,\mbox{G}$ external magnetic fields aligned along the axis of rotation increase the region of stability of the A-core phase of rotating <sup>3<sup>3He-B, opening a window of stability down to low pressures. These results are compared with the experimentally reported phase transitions in rotating <sup>3<sup>3He-B.

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