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首页> 外文期刊>International Reviews in Physical Chemistry >Dynamic dipole polarizabilities of heteronuclear alkali dimers: optical response, trapping and control of ultracold molecules
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Dynamic dipole polarizabilities of heteronuclear alkali dimers: optical response, trapping and control of ultracold molecules

机译:异核碱金属二聚体的动态偶极偏振力:超级分子的光学响应,捕获和控制

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摘要

In this article we address the general approach for calculating dynamical dipole polarizabilities of small quantum systems, based on a sum-over-states formula involving in principle the entire energy spectrum of the system. We complement this method by a few-parameter model involving a limited number of effective transitions, allowing for a compact and accurate representation of both the isotropic and anisotropic components of the polarizability. We apply the method to the series of ten heteronuclear molecules composed of two of (Li-7, Na-23, K-39, Rb-87, Cs-133) alkali-metal atoms. We rely on both up-to-date spectroscopically-determined potential energy curves for the lowest electronic states, and on our systematic studies of these systems performed during the last decade for higher excited states and for permanent and transition dipole moments. Such a compilation is timely for the continuously growing researches on ultracold polar molecules. Indeed the knowledge of the dynamic dipole polarizabilities is crucial to model the optical response of molecules when trapped in optical lattices, and to determine optimal lattice frequencies ensuring optimal transfer to the absolute ground state of initially weakly-bound molecules. When they exist, we determine the so-called 'magic frequencies' where the ac-Stark shift and thus the viewed trap depth, is the same for both weakly-bound and ground-state molecules.
机译:在本文中,我们根据原则上涉及系统的整个能谱,解决了计算小量子系统的动态偶极偏振能力的一般方法。我们通过涉及有限数量的有效转变的少数参数模型来补充该方法,允许极其极化性的各向同性和各向异性组分的紧凑且准确的表示。我们将该方法应用于由两种(Li-7,Na-23,K-39,RB-87,CS-133)碱金属原子组成的十种异种核分子系列。我们依赖于最新的电子国家的最新光谱 - 确定的潜在能量曲线,以及我们对最近十年来进行的这些系统的系统研究,以获得更高的兴奋状态,并且用于永久和过渡偶极矩。这样的汇编是对超级较超级极性分子的不断增长的研究。实际上,动态偶极偏振性的知识对于在光学晶格中捕获时的分子的光学响应是至关重要的,并确定最佳的晶格频率,确保最初的弱束缚分子的绝对接地状态的最佳转移。当它们存在时,我们确定所谓的“魔法频率”,其中AC-STARK移位和由此观察的陷阱深度对于弱束和地态分子是相同的。

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