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Estimating Bounds on Collisional Relaxation Rates of Spin-Polarized 87Rb Atoms at Ultracold Temperatures

机译:估计超冷温度下自旋极化的87Rb原子的碰撞弛豫速率的界

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摘要

We present quantum scattering calculations for the collisional relaxation rate coefficient of spin-polarized 87Rb(f = 2,m = 2) atoms, which determines the loss rate of cold Rb atoms from a magnetic trap. Unlike the lighter alkali atoms, spin-polarized 87Rb atoms can undergo dipolar relaxation due to both the normal spin-spin dipole interaction and a second-order spin-orbit interaction with distant electronic states of the dimer. We present ab initio calculations for the second-order spin-orbit terms for both Rb2 and Cs2. The corrections lead to a reduction in the relaxation rate for 87Rb. Our primary concern is to analyze the sensitivity of the 87Rb trap loss to the uncertainties in the ground state molecular potentials. Since the scattering length for the a3Σ+u state is already known, the major uncertainties are associated with the X1Σ+g potential. After testing the effect of systematically modifying the short-range form of the molecular potentials over a reasonable range, and introducing our best estimate of the second-order spin-orbit interaction, we estimate that in the low temperature limit the rate coefficient for loss of Rb atoms from the f = 2,m = 2 state is between 0.4 × 10−15 cm3/s and 2.4 × 10−15 cm3/s (where this number counts two atoms lost per collision). In a pure condensate the rate coefficient would be reduced by 1/2.
机译:我们给出了自旋极化的 87 Rb(f = 2,m = 2)原子的碰撞弛豫速率系数的量子散射计算,该系数确定了磁阱中冷Rb原子的损失率。与较轻的碱原子不同,自旋极化的 87 Rb原子由于正常的自旋-自旋偶极子相互作用和与二聚体的遥远电子态的二阶自旋轨道相互作用而可能发生偶极弛豫。我们介绍了Rb2和Cs2的二阶自旋轨道项的从头计算。校正导致 87 Rb的弛豫率降低。我们主要关注的是分析 87 Rb陷阱损失对基态分子电势不确定性的敏感性。由于已知a 3 Σ + u状态的散射长度,因此主要不确定性与X 1 Σ相关+ g潜力。在测试了在合理范围内系统地修改分子电势的短程形式的影响并引入我们对二阶自旋轨道相互作用的最佳估计之后,我们估计在低温范围内,损失的速率系数来自f = 2,m = 2状态的Rb原子介于0.4×10 -15 cm 3 / s和2.4×10 -15 cm 3 / s(此数字计算每次碰撞损失的两个原子)。在纯冷凝物中,速率系数将降低1/2。

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