Theories of Linear Response in BCS Superfluids and How They Meet Fundamental Constraints
arXiv:1211.3673 · doi:10.1007/s10909-012-0853-7
Abstract
We address the importance of symmetry and symmetry breaking on linear response theories of fermionic BCS superfluids. The linear theory of a noninteracting Fermi gas is reviewed and several consistency constraints are verified. The challenge to formulate linear response theories of BCS superfluids consistent with density and spin conservation laws comes from the presence of a broken U(1) symmetry associated with electromagnetism (EM) and we discuss two routes for circumventing this. The first route follows Nambu's integral-equation approach for the EM vertex function, but this method is not specific for BCS superfluids. We focus on the second route based on a consistent-fluctuation-of-the order-parameter (CFOP) approach where the gauge transformation and the fluctuations of the order parameter are treated on equal footing. The CFOP approach allows one to explicitly verify several important constraints: The EM vertex satisfies not only a Ward identity which guarantees charge conservation but also a -limit Ward identity associated with the compressibility sum rule. In contrast, the spin degrees of freedom associated with another U(1) symmetry are not affected by the Cooper-pair condensation that breaks only the U(1) symmetry. As a consequence the collective modes from the fluctuations of the order parameter only couple to the density response function but decouple from the spin response function, which reflects the different fates of the two U(1) symmetries in the superfluid phase. Our formulation lays the ground work for application to more general theories of BCS-Bose Einstein Condensation crossover both above and below .
Review on gauge invariance and charge-spin difference of BCS theory. 27 pages, 1 figure. Some typos have been corrected
References in corpus (2)
Cited by in corpus (20)
- Leggett modes in iron-based superconductors as a probe of Time Reversal Symmetry Breaking
- Optical excitation of phase modes in strongly disordered superconductors
- Probing the dynamic structure factor of a neutral Fermi superfluid along the BCS-BEC crossover using atomic impurity qubits
- Correcting inconsistencies in the conventional superfluid path integral scheme
- The Higgs-Amplitude mode in the optical conductivity in the presence of a supercurrent: Gauge-invariant formulation with disorder
- The Compressibility in Strongly Correlated Superconductors and Superfluids: From BCS to BEC
- Gauge invariant theories of linear response for strongly correlated superconductors
- Electromagnetic response of superconductors in the presence of multiple collective modes
- Dynamic structure factors of a strongly interacting Fermi superfluid near an orbital Feshbach resonance across the phase transition from BCS to Sarma superfluid
- Dynamic structure factor of a strongly correlated Fermi superfluid within a density functional theory approach
- Fundamental Constraints on Linear Response Theories of Fermi Superfluids Above and Below
- Structure factors and quantum geometry in multiband BCS superconductors
- Relation connecting thermodynamics and transport of atomic unitary Fermi superfluids
- Density and Spin Linear Response of Atomic Fermi Superfluids with Population Imbalance in BCS-BEC Crossover
- Establishing the Gauge Invariant Linear Response of Fermionic Superfluids with Pair Fluctuations: A Diagrammatic approach
- Shear Viscosity of Uniform Fermi Gases with Population Imbalance
- Conserving Approximation of Pairing theories in Fermionic superfluid phase
- Ward identities for charge and heat currents of particle-particle and particle-hole pairs
- Vertex correction for the linear and nonlinear optical responses in superconductors: multiband effect and topological superconductivity
- Fluctuation conductivity in ultraclean multicomponent superconductors