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Experimental quantum simulation of superradiant phase transition beyond no-go theorem via antisqueezing

Physics

Experimental quantum simulation of superradiant phase transition beyond no-go theorem via antisqueezing

X. Chen, Z. Wu, et al.

This groundbreaking research simulates the elusive superradiant phase transition using nuclear magnetic resonance, creating highly entangled and squeezed Schrödinger cat states of spins. Researchers Xi Chen, Ze Wu, Min Jiang, Xin-You Lü, Xinhua Peng, and Jiangfeng Du explore the potential implications for quantum theory testing and quantum metrology.... show more
Abstract
The superradiant phase transition in thermal equilibrium is a fundamental concept bridging statistical physics and electrodynamics, which has never been observed in real physical systems since the first proposal in the 1970s. The existence of this phase transition in cavity quantum electrodynamics systems is still subject of ongoing debates due to the no-go theorem induced by the so-called A2 term. Moreover, experimental conditions to study this phase transition are hard to achieve with current accessible technology. Based on the platform of nuclear magnetic resonance, here we experimentally simulate the occurrence of an equilibrium superradiant phase transition beyond no-go theorem by introducing the antisqueezing effect. The mechanism relies on that the antisqueezing effect recovers the singularity of the ground state via exponentially enhancing the zero point fluctuation of system. The strongly entangled and squeezed Schrödinger cat states of spins are achieved experimentally in the superradiant phase, which may play an important role in fundamental tests of quantum theory and implementations of quantum metrology.
Publisher
Nature Communications
Published On
Nov 01, 2021
Authors
Xi Chen, Ze Wu, Min Jiang, Xin-You Lü, Xinhua Peng, Jiangfeng Du
Tags
superradiant phase transition
nuclear magnetic resonance
entanglement
squeezed states
quantum metrology
Schrödinger cat states
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