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Dipolar collisions of polar molecules in the quantum regime

机译:量子态中极性分子的偶极碰撞

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摘要

Ultracold polar molecules offer the possibility of exploring quantum gases with interparticle interactions that are strong, long-range and spatially anisotropic. This is in stark contrast to the much studied dilute gases of ultracold atoms, which have iso-tropic and extremely short-range (or 'contact') interactions. Furthermore, the large electric dipole moment of polar molecules can be tuned using an external electric field; this has a range of applications such as the control of ultracold chemical reactions, the design of a platform for quantum information processing and the realization of novel quantum many-body systems. Despite intense experimental efforts aimed at observing the influence of dipoles on ultracold molecules, only recently have sufficiently high densities been achieved. Here we report the experimental observation of dipolar collisions in an ultracold molecular gas prepared close to quantum degeneracy. For modest values of an applied electric field, we observe a pronounced increase in the loss rate of fermionic potassium-rubidium molecules due to ultracold chemical reactions. We find that the loss rate has a steep power-law dependence on the induced electric dipole moment, and we show that this dependence can be understood in a relatively simple model based on quantum threshold laws for the scattering of fermionic polar molecules. In addition, we directly observe the spatial anisotropy of the dipolar interaction through measurements of the thermodynamics of the dipolar gas. These results demonstrate how the long-range dipolar interaction can be used for electric-field control of chemical reaction rates in an ultracold gas of polar molecules. Furthermore, the large loss rates in an applied electric field suggest that creating a long-lived ensemble of ultracold polar molecules may require confinement in a two-dimensional trap geometry to suppress the influence of the attractive, 'head-to-tail', dipolar interactions.
机译:超冷极性分子提供了探索具有强,长距离和空间各向异性的粒子间相互作用的量子气体的可能性。这与经过广泛研究的超冷原子稀气体形成鲜明对比,超稀原子具有各向同性和极短程(或“接触”)相互作用。此外,极性分子的大电偶极矩可以使用外部电场进行调整;它具有一系列应用,例如超冷化学反应的控制,量子信息处理平台的设计以及新型量子多体系统的实现。尽管进行了旨在观察偶极子对超冷分子的影响的大量实验工作,但直到最近才获得足够高的密度。在这里,我们报告在接近量子简并性的超冷分子气体中发生偶极碰撞的实验观察。对于适度的外加电场值,我们观察到由于超冷化学反应,铁离子钾-分子的损失率显着增加。我们发现损耗率对感应电偶极矩具有陡峭的幂律依赖性,并且我们表明可以在基于量子阈值定律的相对简单模型中理解该依赖性,以用于铁电极性分子的散射。此外,我们通过测量偶极气体的热力学来直接观察偶极相互作用的空间各向异性。这些结果证明了远程偶极相互作用可如何用于电场控制极性分子超冷气体中的化学反应速率。此外,施加电场中的大损耗率表明,建立超冷极性分子的长寿命集合体可能需要限制在二维阱几何结构中,以抑制有吸引力的“头对尾”偶极子的影响互动。

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  • 来源
    《Nature 》 |2010年第7293期| p.1324-1328| 共5页
  • 作者单位

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA Max Planck Institute for Quantum Optics, D-85748 Garching, Germany;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

    JILA, NIST and University of Colorado, Department of Physics, University of Colorado, Boulder, Colorado 80309-0440, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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