Institute for Quantum Electronics, ETH Zurich, 8093 Zurich, Switzerland.
Phys Rev Lett. 2013 Nov 1;111(18):185307. doi: 10.1103/PhysRevLett.111.185307. Epub 2013 Oct 31.
We create an artificial graphene system with tunable interactions and study the crossover from metallic to Mott insulating regimes, both in isolated and coupled two-dimensional honeycomb layers. The artificial graphene consists of a two-component spin mixture of an ultracold atomic Fermi gas loaded into a hexagonal optical lattice. For strong repulsive interactions, we observe a suppression of double occupancy and measure a gapped excitation spectrum. We present a quantitative comparison between our measurements and theory, making use of a novel numerical method to obtain Wannier functions for complex lattice structures. Extending our studies to time-resolved measurements, we investigate the equilibration of the double occupancy as a function of lattice loading time.
我们构建了一个具有可调相互作用的人工石墨烯系统,并研究了在孤立和耦合的二维蜂窝层中,从金属到莫特绝缘态的交叉。该人工石墨烯由装载在六边形光学晶格中的超冷原子费米气体的两分量自旋混合物组成。对于强排斥相互作用,我们观察到双占据的抑制,并测量了带隙激发谱。我们利用一种新的数值方法来获得复杂晶格结构的 Wannier 函数,对我们的测量结果和理论进行了定量比较。扩展我们的研究到时间分辨测量,我们研究了双占据的平衡作为晶格加载时间的函数。