While free fermion topological crystalline insulators have been largely classified, the analogous problem in the strongly interacting case has been only partially solved. In this paper, we develop a characterization and classification of interacting, invertible fermionic topological phases in (2+1) dimensions with charge conservation, discrete magnetic translation and $M$-fold point group rotation symmetries, which form the group $G_f = \text{U}(1)^f \times_{\phi} [\mathbb{Z}^2\rtimes \mathbb{Z}_M]$ for $M=1,2,3,4,6$. $\phi$ is the magnetic flux per unit cell. We derive a topological response theory in terms of background crystalline gauge fields, which gives a complete classification of different phases and a physical characterization in t...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
We study the effect of electron interactions in topological crystalline insulators (TCIs) protected ...
We derive a framework to apply topological quantum chemistry in systems subject to magnetic flux. We...
We study classification of interacting fermionic symmetry-protected topological (SPT) phases with bo...
We study a two-dimensional tight-binding model of a topological crystalline insulator (TCI) protecte...
We classify interacting topological insulators and superconductors with order-two crystal symmetries...
We show that compositions of time-reversal and spatial symmetries, also known as the magnetic-space-...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
We study the effect of electron interactions in topological crystalline insulators (TCIs) protected ...
We derive a framework to apply topological quantum chemistry in systems subject to magnetic flux. We...
We study classification of interacting fermionic symmetry-protected topological (SPT) phases with bo...
We study a two-dimensional tight-binding model of a topological crystalline insulator (TCI) protecte...
We classify interacting topological insulators and superconductors with order-two crystal symmetries...
We show that compositions of time-reversal and spatial symmetries, also known as the magnetic-space-...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
Topological crystalline phases in electronic structures can be generally classified using the spatia...
We study the effect of electron interactions in topological crystalline insulators (TCIs) protected ...
We derive a framework to apply topological quantum chemistry in systems subject to magnetic flux. We...