Observation of dynamical quantum phase transition by a superconducting qubit simulation
Xue-Yi Guo, Chao Yang, Yu Zeng, Yi Peng, He-Kang Li, Hui Deng, Yi-Rong, Jin, Shu Chen, Dongning Zheng, and Heng Fan

TL;DR
This paper reports the first experimental observation of dynamical quantum phase transitions using a superconducting qubit to simulate many-body quantum dynamics, revealing nonanalytic behaviors and topological invariants.
Contribution
It demonstrates the simulation of dynamical quantum phase transitions in many-body systems with a single superconducting qubit, including topological aspects.
Findings
Observation of nonanalytic behavior in dynamical free energy
Visualization of state evolution paths on the Bloch sphere
Detection of Skyrmion lattice in momentum-time space
Abstract
A dynamical quantum phase transition can occur during time evolution of sudden quenched quantum systems across a phase transition. It corresponds to the nonanalytic behavior at a critical time of the rate function of the quantum state return amplitude, analogous to nonanalyticity of the free energy density at the critical temperature in macroscopic systems. A variety of many-body systems can be represented in momentum space as a spin-1/2 state evolving on the Bloch sphere, where each momentum mode is decoupled and thus can be simulated independently by a single qubit. Here, we report the observation of a dynamical quantum phase transition in a superconducting qubit simulation of the quantum quench dynamics of many-body systems. We take the Ising model with a transverse field as an example for demonstration. In our experiment, the spin state, which is initially polarized longitudinally,…
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