Thomas Claire K, Barter Thomas H, Leung Tsz-Him, Okano Masayuki, Jo Gyu-Boong, Guzman Jennie, Kimchi Itamar, Vishwanath Ashvin, Stamper-Kurn Dan M
Department of Physics, University of California, Berkeley, California 94720, USA.
Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA.
Phys Rev Lett. 2017 Sep 8;119(10):100402. doi: 10.1103/PhysRevLett.119.100402. Epub 2017 Sep 6.
The mean-field treatment of the Bose-Hubbard model predicts properties of lattice-trapped gases to be insensitive to the specific lattice geometry once system energies are scaled by the lattice coordination number z. We test this scaling directly by comparing coherence properties of ^{87}Rb gases that are driven across the superfluid to Mott insulator transition within optical lattices of either the kagome (z=4) or the triangular (z=6) geometries. The coherent fraction measured for atoms in the kagome lattice is lower than for those in a triangular lattice with the same interaction and tunneling energies. A comparison of measurements from both lattices agrees quantitatively with the scaling prediction. We also study the response of the gas to a change in lattice geometry, and observe the dynamics as a strongly interacting kagome-lattice gas is suddenly "hole doped" by introducing the additional sites of the triangular lattice.
玻色 - 哈伯德模型的平均场处理预测,一旦系统能量通过晶格配位数(z)进行缩放,晶格捕获气体的性质对特定的晶格几何形状不敏感。我们通过比较处于超流体到莫特绝缘体转变过程中的(^{87}Rb)气体在 kagome((z = 4))或三角形((z = 6))几何形状的光学晶格中的相干性质,直接测试这种缩放。在具有相同相互作用和隧穿能量的情况下,kagome晶格中原子的相干分数低于三角形晶格中的原子。来自两个晶格的测量结果比较在定量上与缩放预测一致。我们还研究了气体对晶格几何形状变化的响应,并观察了随着通过引入三角形晶格的额外位点使强相互作用的kagome晶格气体突然“空穴掺杂”时的动力学。