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超冷费米子在光晶格中的短程量子磁学。

Short-range quantum magnetism of ultracold fermions in an optical lattice.

机构信息

Institute for Quantum Electronics, ETH Zurich, 8093 Zurich, Switzerland.

出版信息

Science. 2013 Jun 14;340(6138):1307-10. doi: 10.1126/science.1236362. Epub 2013 May 23.

Abstract

Quantum magnetism originates from the exchange coupling between quantum mechanical spins. Here, we report on the observation of nearest-neighbor magnetic correlations emerging in the many-body state of a thermalized Fermi gas in an optical lattice. The key to obtaining short-range magnetic order is a local redistribution of entropy, which allows temperatures below the exchange energy for a subset of lattice bonds. When loading a repulsively interacting gas into either dimerized or anisotropic simple cubic configurations of a tunable-geometry lattice, we observe an excess of singlets as compared with triplets consisting of two opposite spins. For the anisotropic lattice, the transverse spin correlator reveals antiferromagnetic correlations along one spatial axis. Our work facilitates addressing open problems in quantum magnetism through the use of quantum simulation.

摘要

量子磁性源于量子力学自旋之间的交换耦合。在这里,我们报告了在光学晶格中热化费米气体的多体态中出现的最近邻磁关联的观测结果。获得短程磁有序的关键是熵的局部再分配,这使得晶格键的子集的交换能低于温度。当将排斥相互作用的气体装入可调谐几何晶格的二聚或各向异性简单立方构型时,我们观察到与由两个相反自旋组成的三重态相比,单态的过剩。对于各向异性晶格,横向自旋相关器揭示了沿一个空间轴的反铁磁关联。我们的工作通过量子模拟为解决量子磁性中的开放性问题提供了便利。

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