论文标题
驱动正弦模型中的多体参数共振
Many-body parametric resonances in the driven sine-Gordon model
论文作者
论文摘要
我们通过通过半古典截短的Wigner近似(TWA)研究了使用调制的隧道偶联的驱动正弦 - 戈登模型(TWA),研究了参数振荡器的量子多体变量。我们首先分析了保留模型间隙的驱动协议的参数谐振态度,并将TWA与时间依赖的高斯变异ANSATZ(TGVA)进行比较。然后,我们转向闭合间隙的驱动器,从而增强了能量吸收。尽管TGVA方法在此制度中分解,但我们可以应用TWA来探索模式分辨能量密度的动力学,以及在预热加热方案中模式之间的高阶相关性。对于较弱的驱动振幅,我们在主要谐振模式下发现了指数迅速的能量吸收,而在短时间尺度上,所有其余模式的加热几乎完全抑制。在以后的时候,激发的主共振通过哈密顿式的非线性为其较高的谐波提供了有效的共振驾驶术语,并在这些特定模式下产生了指数迅速加热。我们通过评估高阶连接的相关函数来捕获这些共振过程引起的强相关性。我们的结果可以在超低原子设置中进行实验探测,在有调制的隧道偶联的情况下,具有平行的一维准态态。
We study a quantum many-body variant of the parametric oscillator, by investigating the driven sine-Gordon model with a modulated tunnel coupling via a semi-classical Truncated Wigner Approximation (TWA). We first analyze the parametric resonant regime for driving protocols that retain our model gapped, and compare the TWA to a Time-Dependent Gaussian Variational Ansatz (TGVA). We then turn to a drive which closes the gap, resulting in an enhanced energy absorption. While the TGVA approach breaks down in this regime, we can apply TWA to explore the dynamics of the mode-resolved energy density, and the higher-order correlations between modes in the prethermal heating regime. For weak driving amplitude, we find an exponentially fast energy absorption in the main resonant mode, while the heating of all remaining modes is almost perfectly suppressed on short time scales. At later times, the highly excited main resonance provides effective resonant driving terms for its higher harmonics through the non-linearities in the Hamiltonian, and gives rise to an exponentially fast heating in these particular modes. We capture the strong correlations induced by these resonant processes by evaluating higher order connected correlation functions. Our results can be experimentally probed in ultracold atomic settings, with parallel one-dimensional quasi-condensates in the presence of a modulated tunnel coupling.