Symmetry Protected Topological Superfluid $^3$He-B
Abstract
Owing to the richness of symmetry and well-established knowledge on the bulk superfluidity, the superfluid He has offered a prototypical system to study intertwining of topology and symmetry. This article reviews recent progress in understanding the topological superfluidity of He in a multifaceted manner, including symmetry consideration, the Jackiw-Rebbi's index theorem, and the quasiclassical theory. Special focus is placed on the symmetry protected topological superfuidity of the He-B confined in a slab geometry. The He-B under a magnetic field is separated to two different sub-phases: The symmetry protected topological phase and non-topological phase. The former phase is characterized by the existence of symmetry protected Majorana fermions. The topological phase transition between them is triggered off by the spontaneous breaking of a hidden discrete symmetry. The critical field is quantitatively determined from the microscopic calculation that takes account of magnetic dipole interaction of He nucleus. It is also demonstrated that odd-frequency even-parity Cooper pair amplitudes are emergent in low-lying quasiparticles. The key ingredients, symmetry protected Majorana fermions and odd-frequency pairing, bring an important consequence that the coupling of the surface states to an applied field is prohibited by the hidden discrete symmetry, while the topological phase transition with the spontaneous symmetry breaking is accompanied by anomalous enhancement and anisotropic quantum criticality of surface spin susceptibility. We also illustrate common topological features between topological crystalline superconductors and symmetry protected topological superfluids, taking UPt and Rashba superconductors as examples.
Cite
@article{arxiv.1409.6094,
title = {Symmetry Protected Topological Superfluid $^3$He-B},
author = {Takeshi Mizushima and Yasumasa Tsutsumi and Masatoshi Sato and Kazushige Machida},
journal= {arXiv preprint arXiv:1409.6094},
year = {2015}
}
Comments
Invited Topical Review Paper: 99 pages, 24 figures