Triana Johan F, Estrada Andrés F, Pachón Leonardo A
Grupo de Física Atómica y Molecular, Instituto de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia UdeA; Calle 70 No. 52-21, Medellín, Colombia.
Phys Rev Lett. 2016 May 6;116(18):183602. doi: 10.1103/PhysRevLett.116.183602. Epub 2016 May 2.
A sideband cooling strategy that incorporates (i) the dynamics induced by structured (non-Markovian) environments in the target and auxiliary systems and (ii) the optimally time-modulated interaction between them is developed. For the context of cavity optomechanics, when non-Markovian dynamics are considered in the target system, ground state cooling is reached at much faster rates and at a much lower phonon occupation number than previously reported. In contrast to similar current strategies, ground state cooling is reached here for coupling-strength rates that are experimentally accessible for the state-of-the-art implementations. After the ultrafast optimal-ground-state-cooling protocol is accomplished, an additional optimal control strategy is considered to maintain the phonon number as close as possible to the one obtained in the cooling procedure. Contrary to the conventional expectation, when non-Markovian dynamics are considered in the auxiliary system, the efficiency of the cooling protocol is undermined.
开发了一种边带冷却策略,该策略包含:(i) 目标系统和辅助系统中结构化(非马尔可夫)环境诱导的动力学,以及 (ii) 它们之间的最优时间调制相互作用。对于腔光力学的情况,当在目标系统中考虑非马尔可夫动力学时,与之前报道的相比,能以快得多的速率和低得多的声子占据数实现基态冷却。与当前类似策略不同,在此处对于最先进实现中实验可及的耦合强度速率,实现了基态冷却。在完成超快最优基态冷却协议后,考虑了一种额外的最优控制策略,以将声子数尽可能维持在冷却过程中获得的数值附近。与传统预期相反,当在辅助系统中考虑非马尔可夫动力学时,冷却协议的效率会受到损害。