The Niels Bohr International Academy, The Niels Bohr Institute, University of Copenhagen, Blegdamsvej 17, DK-2100 Copenhagen Ø, Denmark.
Phys Rev Lett. 2010 Jan 8;104(1):010801. doi: 10.1103/PhysRevLett.104.010801. Epub 2010 Jan 4.
We calculate the shift, due to interatomic interactions, of an optical transition in an atomic Fermi gas trapped in an optical lattice, as in recent experiments of Campbell et al. [Science 324, 360 (2009)]. Using a pseudospin formalism to describe the density matrix of atoms, we derive a Bloch equation which incorporates both spatial inhomogeneity of the probe laser field and interatomic interactions. Expressions are given for the frequency shift as a function of pulse duration, detuning of the probe laser, and the spatial dependence of the electric field of the probe beam. In the low temperature semiclassical regime, we find that the magnitude of the shift is proportional to the temperature.
我们计算了在 Campbell 等人最近的实验[Science 324, 360 (2009)]中,囚禁于光学晶格中的原子费米气体中,由于原子间相互作用而导致的光学跃迁的移动。我们使用赝自旋形式来描述原子的密度矩阵,推导出一个 Bloch 方程,其中包含了探测激光场的空间非均匀性和原子间相互作用。给出了频率移动作为脉冲持续时间、探测激光失谐和探测光束电场空间依赖性的函数的表达式。在低温半经典的情况下,我们发现移动的幅度与温度成正比。