Abstract
We test the proposal of [1] for the holographic computation of the charged moments and the resulting symmetry-resolved entanglement entropy in different excited states, as well as for two entangling intervals. Our holographic computations are performed in U(1) Chern-Simons-Einstein-Hilbert gravity, and are confirmed by independent results in a conformal field theory at large central charge. In particular, we consider two classes of excited states, corresponding to charged and uncharged conical defects in AdS3. In the conformal field theory, these states are generated by the insertion of charged and uncharged heavy operators. We employ the monodromy method to calculate the ensuing four-point function between the heavy operators and the twist fields. For the two-interval case, we derive our results on the AdS and the conformal field theory side, respectively, from the generating function method of [1], as well as the vertex operator algebra. In all cases considered, we find equipartition of entanglement between the different charge sectors. We also clarify an aspect of conformal field theories with a large central charge and hat{mathfrak{u}}{(1)}_k Kac-Moody symmetry used in our calculations, namely the factorization of the Hilbert space into a gravitational Virasoro sector with large central charge, and a hat{mathfrak{u}}{(1)}_k Kac-Moody sector.
Highlights
This question was addressed by introducing the notion of symmetry-resolved entanglement entropy
We clarify an aspect of conformal field theories with a large central charge and u(1)k Kac-Moody symmetry used in our calculations, namely the factorization of the Hilbert space into a gravitational Virasoro sector with large central charge, and a u(1)k Kac-Moody sector
Investigating the ground state of this theory, we identified bulk Wilson lines as the natural candidates to resolve the entanglement entropy on charge sectors
Summary
Given any theory with global symmetry G, its Hilbert space of states decomposes into irreducible representations, each corresponding to a sector of fixed charge. It is possible to investigate the entanglement associated with single charge sectors, i.e. the symmetry-resolved entanglement entropy. We the review previous results on the symmetry-resolved entanglement entropy of [1] and extend them to more general cases
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