论文标题

超速原子 - 分子碰撞的全维量子散射计算:分子振动的作用

Full-dimensional quantum scattering calculations on ultracold atom-molecule collisions in magnetic fields: The role of molecular vibrations

论文作者

Morita, Masato, Kłos, Jacek, Tscherbul, Timur V.

论文摘要

外部磁场中超速分子碰撞的严格量子散射计算出现了出色的计算问题,这是由于强烈的各向异性原子 - 分子相互作用,依赖于碰撞伙伴的相对方向以及其振动自由度。在这里,我们介绍了强烈各向异性原子 - 分子(Li+CAH)在外部磁场上的第一个严格的三维量子散射计算,该计算是基于平等适应的总角动量表示和新的三维势能表面(PES)的三维势能表面(PES),用于使用三维的li-collive collistion contription contription contrestive coutient coution coucous,基于平等的总角度动量表示,使用无界线的couce and coucoustive cou cou cou,基于平等的总角度动量表示,使用无界线的COUCOUSENTIST cOUSTIONT COUTESTION [UCCSD(t)]和大型四倍体 - Zeta类型基集。我们发现,虽然完全描述LI($ M_S = 1/2 $)+CAH($ V = 0,n = 0,M_S = 1/2 $)的准确描述是必要的,这是必要的,这是磁场的函数,但磁共振密度和统计学的统计属性和统计属性不受旋转的原子 - - 元素 - - 元素碰撞的影响。以前的计算。我们观察到超速LI($ m_s = 1/2 $)+CAH($ v = 1,n = 0,m_s = 1/2 $)的快速,对场不敏感的振动淬灭,导致CAH振动的有效碰撞冷却。

Rigorous quantum scattering calculations on ultracold molecular collisions in external fields present an outstanding computational problem due to strongly anisotropic atom-molecule interactions that depend on the relative orientation of the collision partners, as well as on their vibrational degrees of freedom. Here, we present the first numerically exact three-dimensional quantum scattering calculations on strongly anisotropic atom-molecule (Li+CaH) collisions in an external magnetic field based on the parity-adapted total angular momentum representation and a new three-dimensional potential energy surface (PES) for the triplet Li-CaH collision complex using the unrestricted coupled cluster method with single, double and perturbative triple excitations [UCCSD(T)] and a large quadruple-zeta type basis set. We find that while the full three-dimensional treatment is necessary for the accurate description of Li ($M_S=1/2$)+CaH ($v=0,N=0,M_S=1/2$) collisions as a function of magnetic field, the magnetic resonance density and statistical properties of spin-polarized atom-molecule collisions are not strongly affected by vibrational degrees of freedom, justifying the rigid-rotor approximation used in previous calculations. We observe rapid, field-insensitive vibrational quenching in ultracold Li ($M_S=1/2$)+CaH ($v=1,N=0, M_S=1/2$) collisions, leading to efficient collisional cooling of CaH vibrations.

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