Conformal Field Theories generated by Chern Insulators under Quantum Decoherence
Abstract
We demonstrate that the fidelity between a pure state trivial insulator and the mixed state density matrix of a Chern insulator under decoherence can be mapped to a variety of two-dimensional conformal field theories (CFT); more specifically, the quantity is mapped to the partition function of the desired CFT, where and are respectively the density matrices of the decohered Chern insulator and a pure state trivial insulator. For a pure state Chern insulator with Chern number , the fidelity is mapped to the partition function of the CFT; under weak decoherence, the Chern insulator density matrix can experience certain instability, and the "partition function" can flow to other interacting CFTs with smaller central charges. The R\'{e}nyi relative entropy is mapped to the free energy of the CFT, and we demonstrate that the central charge of the CFT can be extracted from the finite size scaling of , analogous to the well-known finite size scaling of CFT.
Cite
@article{arxiv.2305.13410,
title = {Conformal Field Theories generated by Chern Insulators under Quantum Decoherence},
author = {Kaixiang Su and Nayan Myerson-Jain and Cenke Xu},
journal= {arXiv preprint arXiv:2305.13410},
year = {2024}
}
Comments
8.5 pages, including references