Solving and completing the Rabi-Stark model in the ultrastrong-coupling regime

IF 2.6 2区 物理与天体物理 Q2 OPTICS
Gen Li, Hao Zhu, Guorui Zhang
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Abstract

In this work,we employ a unitary transformation with a suitable parameter to convert the quantum Rabi-Stark model into a Jaynes-Cummings-like model. Subsequently, we derive the analytical energy spectra in the ultrastrong coupling regime. The energy spectra exhibit a phenomenon known as spectral collapse, indicating the instability of the model due to the unboundedness of its energy from below at higher coupling parameters. To stabilize the Rabi-Stark model, we introduce a nonlinear photon-photon interaction term. We then compare the modified model with the original model in the classical oscillator (CO) limit. Interestingly, we observe a regular"staircase"pattern in the mean photon number of the ground state. This pattern exhibits a fixed slope and equal step width, which we determine analytically. Moreover, we analytically determine the phase boundary, which slightly differs from that in the original Rabi-Stark model. These findings offer insights into the investigation of those superradiant phase transitions that are unbounded from below due to the phenomenon of spectral collapse.
超强耦合条件下Rabi-Stark模型的求解与完善
在这项工作中,我们使用一个具有适当参数的酉变换将量子拉比-斯塔克模型转换为类Jaynes-Cummings模型。随后,我们导出了在超强耦合状态下的解析能谱。能谱表现出一种称为谱坍塌的现象,表明模型的不稳定性,这是由于在较高的耦合参数下,其来自下方的能量是无界的。为了稳定拉比-斯塔克模型,我们引入了一个非线性光子-光子相互作用项。然后,在经典振子(CO)极限下,我们将修改后的模型与原始模型进行比较。有趣的是,我们在基态的平均光子数中观察到一个规则的“阶梯”模式。这种模式表现出固定的斜率和相等的步长,这是我们通过分析确定的。此外,我们通过分析确定了相位边界,这与原始的拉比-斯塔克模型略有不同。这些发现为研究那些由于光谱坍塌现象而从下方无边界的超辐射相变提供了见解。
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来源期刊
Physical Review a
Physical Review a OPTICSPHYSICS, ATOMIC, MOLECULAR & CHEMICA-PHYSICS, ATOMIC, MOLECULAR & CHEMICAL
CiteScore
5.30
自引率
24.10%
发文量
2086
期刊介绍: Physical Review A (PRA) publishes important developments in the rapidly evolving areas of atomic, molecular, and optical (AMO) physics, quantum information, and related fundamental concepts. PRA covers atomic, molecular, and optical physics, foundations of quantum mechanics, and quantum information, including: -Fundamental concepts -Quantum information -Atomic and molecular structure and dynamics; high-precision measurement -Atomic and molecular collisions and interactions -Atomic and molecular processes in external fields, including interactions with strong fields and short pulses -Matter waves and collective properties of cold atoms and molecules -Quantum optics, physics of lasers, nonlinear optics, and classical optics
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