Department of Physics, Quantum Science Otago (QSO), and Dodd-Walls Centre for Photonic and Quantum Technologies, University of Otago, Dunedin, New Zealand.
Science. 2021 Nov 19;374(6570):972-975. doi: 10.1126/science.abh3470. Epub 2021 Nov 18.
The Pauli exclusion principle forbids indistinguishable fermions from occupying the same quantum mechanical state. The implications of this are profound; for example, it accounts for the electronic shell structure of atoms. Here, we performed measurements on the scattering of light from ultracold ensembles of atoms. For a Fermi gas in the quantum degenerate regime, we observed a marked suppression in scattering compared with a similarly prepared Bose gas. The observed decrease in fluorescence and the corresponding increase in light transmission results from Pauli blocking, where Fermi-Dirac statistics limits the number of accessible states for a scattering atom in a large Fermi sea. Our work confirms a fundamental result on the optical response of quantum gases and may contribute to cooling and thermometry schemes.
泡利不相容原理禁止不可区分的费米子占据相同的量子力学状态。这一原理的影响是深远的;例如,它解释了原子的电子壳层结构。在这里,我们对超冷原子集合体的光散射进行了测量。对于处于量子简并态的费米气体,我们观察到与类似制备的玻色气体相比,散射明显受到抑制。荧光的观察到的减少和相应的光透射的增加是由泡利阻塞引起的,其中费米-狄拉克统计限制了在大费米海中散射原子可访问状态的数量。我们的工作证实了量子气体光学响应的一个基本结果,并且可能有助于冷却和测温方案。