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Quantum defect theory for the orbital Feshbach resonance

机译:轨道Feshach共振的量子缺陷理论

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In the ultracold gases of alkali-earth-metal-like atoms, a new type of Feshbach resonance, i.e., the orbital Feshbach resonance (OFR), has been proposed and experimentally observed in ultracold Yb-173 atoms [R. Zhang et al., Phys. Rev. Lett. 115, 135301 (2015)]. When the OFR of the 173Yb atoms occurs, the energy gap between the open and closed channels is smaller by two orders of magnitude than the van der Waals energy. As a result, quantitative accurate results for the low-energy two-body problems can be obtained via multichannel quantum defect theory (MQDT), which is based on the exact solution of the Schrodinger equation with the van der Waals potential. In this paper we use MQDT to calculate the two-atom scattering length, effective range, and binding energy of two-body bound states for the systems with OFR. With these results we further study the clock-transition spectrum for the two-body bound states, which can be used to experimentally measure the binding energy. Our results are helpful for the quantitative theoretical and experimental research for the ultracold gases of alkali-earth-metal-like atoms with OFR.
机译:在碱土金属 - 金属样原子的超大气体中,已经提出了一种新型的Feshbach共振,即轨道Feshbach共振(OFR),并在Ultracold YB-173原子中进行了实验观察[R.张等人。,phy。 rev. lett。 115,135301(2015)]。当发生173YB原子的OFR时,开口和闭合通道之间的能隙比范德瓦尔斯能量更小。其结果是,对于低能量二体问题定量准确的结果可经由多通道量子缺陷理论(MQDT),它是基于薛定谔方程与范德华电位精确解而获得。在本文中,我们使用MQDT计算具有OFR的系统的双原子散射长度,有效范围和两个身体绑定状态的绑定能量。利用这些结果,我们进一步研究了双体染色状态的时钟转换谱,可用于通过实验测量结合能量。我们的结果有助于对碱土金属样原子的超大气体的定量理论和实验研究与OFR。

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