English

Entanglement entropy of (3+1)D topological orders with excitations

Strongly Correlated Electrons 2018-03-06 v2 High Energy Physics - Theory

Abstract

Excitations in (3+1)D topologically ordered phases have very rich structures. (3+1)D topological phases support both point-like and string-like excitations, and in particular the loop (closed string) excitations may admit knotted and linked structures. In this work, we ask the question how different types of topological excitations contribute to the entanglement entropy, or alternatively, can we use the entanglement entropy to detect the structure of excitations, and further obtain the information of the underlying topological orders? We are mainly interested in (3+1)D topological orders that can be realized in Dijkgraaf-Witten gauge theories, which are labeled by a finite group GG and its group 4-cocycle ωH4[G;U(1)]\omega\in\mathcal{H}^4[G;U(1)] up to group automorphisms. We find that each topological excitation contributes a universal constant lndi\ln d_i to the entanglement entropy, where did_i is the quantum dimension that depends on both the structure of the excitation and the data (G,ω)(G,\,\omega). The entanglement entropy of the excitations of the linked/unlinked topology can capture different information of the DW theory (G,ω)(G,\,\omega). In particular, the entanglement entropy introduced by Hopf-link loop excitations can distinguish certain group 4-cocycles ω\omega from the others.

Keywords

Cite

@article{arxiv.1710.11168,
  title  = {Entanglement entropy of (3+1)D topological orders with excitations},
  author = {Xueda Wen and Huan He and Apoorv Tiwari and Yunqin Zheng and Peng Ye},
  journal= {arXiv preprint arXiv:1710.11168},
  year   = {2018}
}

Comments

12 pages, 4 figures; v2: minor changes, published version