5,254 research outputs found

    Towards a complete classification of fermionic symmetry protected topological phases in 3D and a general group supercohomology theory

    Full text link
    Classification and construction of symmetry protected topological (SPT) phases in interacting boson and fermion systems have become a fascinating theoretical direction in recent years. It has been shown that the (generalized) group cohomology theory or cobordism theory can give rise to a complete classification of SPT phases in interacting boson/spin systems. Nevertheless, the construction and classification of SPT phases in interacting fermion systems are much more complicated, especially in 3D. In this work, we revisit this problem based on the equivalent class of fermionic symmetric local unitary (FSLU) transformations. We construct very general fixed point SPT wavefunctions for interacting fermion systems. We naturally reproduce the partial classifications given by special group super-cohomology theory, and we show that with an additional B~H2(Gb,Z2)\tilde{B}H^2(G_b, \mathbb Z_2) (the so-called obstruction free subgroup of H2(Gb,Z2)H^2(G_b, \mathbb Z_2)) structure, a complete classification of SPT phases for three-dimensional interacting fermion systems with a total symmetry group Gf=GbΓ—Z2fG_f=G_b\times \mathbb Z_2^f can be obtained for unitary symmetry group GbG_b. We also discuss the procedure of deriving a general group super-cohomology theory in arbitrary dimensions.Comment: 48 pages, 35 figures, published versio

    New Insights on Low Energy Ο€N\pi N Scattering Amplitudes

    Full text link
    The SS- and PP- wave phase shifts of low-energy pion-nucleon scatterings are analysed using Peking University representation, in which they are decomposed into various terms contributing either from poles or branch cuts. We estimate the left-hand cut contributions with the help of tree-level perturbative amplitudes derived in relativistic baryon chiral perturbation theory up to O(p2)\mathcal{O}(p^2). It is found that in S11S_{11} and P11P_{11} channels, contributions from known resonances and cuts are far from enough to saturate experimental phase shift data -- strongly indicating contributions from low lying poles undiscovered before, and we fully explore possible physics behind. On the other side, no serious disagreements are observed in the other channels.Comment: slightly chnaged version, a few more figures added. Physical conclusions unchange
    • …
    corecore