论文标题
在超低玻色气体中进行模拟宇宙学重新加热
Analog cosmological reheating in an ultracold Bose gas
论文作者
论文摘要
宇宙学的加热描述了通货膨胀后宇宙向热状态的过渡。为了阐明此过程的基本动力学,我们建议在超低玻色气体中量化通用宇宙学单场模型的类似加热的动力学。在我们的设置中,原子玻色的凝结物的激发发挥了充气后衰减的充气场产生的颗粒的作用。扩大时空以及背景振荡的充气场是通过原子相互作用的时间依赖性模仿非相关性极限的,可以通过Feshbach共振进行实验调整。正如我们通过对两个空间维度的经典统计模拟所说明的那样,原子系统的动力学表现出远距离平衡重新加热的特征阶段,包括通过参数稳定性扩大波动以及随后能量向高级速度的湍流运输。该运输受非热固定点的控制,显示了通用的自相似时间演变以及与时间相关的缩放指数的瞬时预定状态。尽管经典的统计模拟只能捕获弱耦合动力学的早期阶段,但拟议的实验具有探索直至后期的演化甚至超出弱耦合方案的潜力。
Cosmological reheating describes the transition of the post-inflationary universe to a hot and thermal state. In order to shed light on the underlying dynamics of this process, we propose to quantum-simulate the reheating-like dynamics of a generic cosmological single-field model in an ultracold Bose gas. In our setup, the excitations on top of an atomic Bose-Einstein condensate play the role of the particles produced by the decaying inflaton field after inflation. Expanding spacetime as well as the background oscillating inflaton field are mimicked in the non-relativistic limit by a time dependence of the atomic interactions, which can be tuned experimentally via Feshbach resonances. As we illustrate by means of classical-statistical simulations for the case of two spatial dimensions, the dynamics of the atomic system exhibits the characteristic stages of far-from-equilibrium reheating, including the amplification of fluctuations via parametric instabilities and the subsequent turbulent transport of energy towards higher momenta. The transport is governed by a non-thermal fixed point showing universal self-similar time evolution as well as a transient regime of prescaling with time-dependent scaling exponents. While the classical-statistical simulations can capture only the earlier stages of the dynamics for weak couplings, the proposed experiment has the potential of exploring the evolution up to late times even beyond the weak coupling regime.