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Single-cycle coherent terahertz-pulse propagation in rigid-rotor molecular media

机译:刚性转子分子介质中的单周期相干太赫兹脉冲传播

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摘要

We theoretically analyze linear and nonlinear coherent propagation of linearly polarized, plane-wave, resonant single-cycle terahertz pulses through spatially extended rigid-rotor molecular media. Our model incorporates mixed state medium preparation, nonperturbative nonlinearities, saturation, coherence, memory effects, and propagation, but ignores the effects of damping. Explicit solutions are reported in the linear propagation regime. These solutions are the multilevel superposition of linear, single-cycle 0 pi pulses, and appear as temporal beats in the time domain. For media initially in thermal equilibrium, the pulse and molecular beats are dispersive and broaden temporally with increased propagation distance. In the simplified limit of equal rotational line strength (an idealized situation), the emitted impulses are exact temporal copies of the input pulse. An efficient, scalable computational method for solving the reduced multilevel Maxwell-Bloch equations for molecular media is reported. This method is based on a standard differential method for the propagation equation together with an operator splitting method for the Bloch equations. It invokes neither the slowly varying envelope (SVEA) or rotating wave approximations (RWA), and incorporates a large number of possible energy eigenstates (we solve for 7744 levels). Case studies of nonlinear single-cycle pulse propagation are then provided by means of computer solutions. In the nonlinear regime, we observe strong molecular orientations and suppression of the pulse and orientational revivals predicted by linear theory. For sufficiently strong pulses, coherent bleaching effects lead to increased transmission of the driving pulse, which also bears signs of self-modulation and carrier-shock formation.
机译:我们从理论上分析了线性极化,平面波共振单周期太赫兹脉冲通过空间扩展的刚性转子分子介质的线性和非线性相干传播。我们的模型结合了混合状态介质的准备,非扰动的非线性,饱和度,相干性,记忆效应和传播,但忽略了阻尼效应。在线性传播机制中报道了显式解。这些解决方案是线性,单周期0 pi脉冲的多级叠加,并在时域中表现为时间跳动。对于最初处于热平衡状态的介质,脉冲和分子节拍是分散的,并且随着传播距离的增加而暂时变宽。在简化的相等旋转线强度限制(理想情况)下,发出的脉冲是输入脉冲的精确时间副本。报告了一种高效,可扩展的计算方法,用于求解分子介质的简化多级麦克斯韦-布洛赫方程。该方法基于传播方程的标准微分方法以及Bloch方程的算子拆分方法。它既不会调用缓慢变化的包络线(SVEA),也不会调用旋转波逼近(RWA),并包含大量可能的能量本征态(我们求解7744级)。然后通过计算机解决方案提供了非线性单周期脉冲传播的案例研究。在非线性机制中,我们观察到了强大的分子取向,并抑制了线性理论预测的脉冲和取向恢复。对于足够强的脉冲,相干的漂白作用会导致驱动脉冲的传输增加,这也带有自调制和载流子冲击的迹象。

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