We discuss the possibility of torsional Nieh-Yan anomaly of the type ∂μ(ej5μ)=γT2(Taâ§Ta) in Weyl superfluids, where T is the infrared (IR) temperature scale and Ta is the effective or emergent torsion from the superfluid order parameter. As distinct from the dimensionful ultraviolet (UV) parameter Λ2 in the conventional torsional Nieh-Yan anomaly, the parameter γ is dimensionless in canonical units. This suggests that such dimensionless parameter may be fundamental, being determined by the geometry, topology, and number of chiral quantum fields in the system. By comparing this to a Weyl superfluid with low-temperature corrections, Tâ‰Δ0, we show that such a term does exist in the hydrodynamics of a chiral p-wave superfluid, such as He3-A, or a chiral superconductor. We also discuss and show how other T2 terms of similar form and of the same order in gradients, coming from, e.g., Fermi-liquid corrections, effective curvature, and the chiral chemical potential, can also be expressed in terms of dimensionless fundamental parameters with emergent low-energy relativistic fields. Lastly, we discuss our results in comparison to relativistic Weyl fermions and the connection of the torsional gravitational anomalies to thermal transport in Weyl systems.
CITATION STYLE
Nissinen, J., & Volovik, G. E. (2020). Thermal Nieh-Yan anomaly in Weyl superfluids. Physical Review Research, 2(3). https://doi.org/10.1103/PhysRevResearch.2.033269
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