Signatures of topological quantum phase transitions in driven and dissipative qubit-arrays
Y. L. Dong, Titus Neupert, R. Chitra, and Sebastian Schmidt

TL;DR
This paper investigates how photonic measurements can detect topological and symmetry-breaking phase transitions in driven, dissipative qubit arrays modeled by the transverse-field XY model and a dual 3-spin interaction model, using non-equilibrium steady-state analysis.
Contribution
It introduces a method to identify phase transitions via bi-local spin correlations in open quantum systems and connects these to Majorana fermion representations, proposing a feasible experimental setup.
Findings
Bi-local correlation functions signal phase transitions.
Correlation functions are applicable to fermionic models.
Proposed superconducting qubit array setup for realization.
Abstract
We study photonic signatures of symmetry broken and topological phases in a driven, dissipative circuit QED realization of spin-1/2 chains. Specifically, we consider the transverse-field XY model and a dual model with 3-spin interactions. The former has a ferromagnetic and a paramagnetic phase, while the latter features, in addition, a symmetry protected topological phase. Using the method of third quantization, we calculate the non-equilibrium steady-state of the open spin chains for arbitrary system sizes and temperatures. We find that the bi-local correlation function of the spins at both ends of the chain provides a sensitive measure for both symmetry-breaking and topological phase transitions of the systems, but no universal means to distinguish between the two types of transitions. Both models have equivalent representations in terms of free Majorana fermions, which host zero, one…
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