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Anomalies in Strongly Coupled Harmonic Quantum Brownian Motion

机译:强耦合谐波量子布朗运动中的异常

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摘要

The exact dynamics of a quantum damped harmonic oscillator coupled to a reservoir of boson modes has been formally described in terms of the coupling function, both in weak and strong coupling regime. In this scenario, we provide a further description of the exact dynamics through integral transforms. We focus on a special class of spectral densities, sub-ohmic at low frequencies, and including integrable divergencies referred to as photonic band gaps. The Drude form of the spectral densities is recovered as upper limit. Starting from special distributions of coherent states as external reservoir, the exact time evolution, described through Fox H-functions, shows long time inverse power law decays, departing from the exponential-like relaxations obtained for the Drude model. Different from the weak coupling regime, in the sub-ohmic condition, undamped oscillations plus inverse power law relaxations appear in the long time evolution of the observables position and momentum. Under the same condition, the number of excitations shows trapping of the population of the excited levels and oscillations enveloped in inverse power law relaxations. Similarly to the weak coupling regime, critical configurations give arbitrarily slow relaxations useful for the control of the dynamics. If compared to the value obtained in weak coupling condition, for strong couplings the critical frequency is enhanced by a factor 4.
机译:在弱耦合和强耦合状态下,都已经根据耦合函数正式描述了耦合到玻色子模式的量子阻尼谐波振荡器的精确动力学。在这种情况下,我们通过积分变换提供了精确动力学的进一步描述。我们将重点放在一类特殊的频谱密度上:低频下为亚欧姆,并包括称为光子带隙的可积分散度。光谱密度的德鲁德形式被恢复为上限。从作为外部储集层的相干态的特殊分布开始,通过Fox H函数描述的精确时间演化显示出长时间的逆幂定律衰减,这与从Drude模型获得的指数式弛豫不同。与弱耦合方式不同,在亚欧姆条件下,可观测位置和动量的长时间演化会出现无阻尼振荡和逆幂定律松弛。在相同条件下,激发次数表明捕获了激发能级,并且在逆幂律松弛中包含了振荡。与弱耦合机制相似,关键配置可提供任意缓慢的松弛,可用于控制动力学。如果与在弱耦合条件下获得的值进行比较,则对于强耦合,临界频率提高了4倍。

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  • 来源
    《Open Systems & Information Dynamics》 |2013年第1期|1350002.1-1350002.24|共24页
  • 作者

    F. Giraldi; F. Petruccione;

  • 作者单位

    Quantum Research Group School of Chemistry and Physics and National Institute for Theoretical Physics University of KwaZulu-Natal, Westville Campus Durban, South Africa;

    Quantum Research Group School of Chemistry and Physics and National Institute for Theoretical Physics University of KwaZulu-Natal, Westville Campus Durban, South Africa;

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