Leung Tsz-Him, Schwarz Malte N, Chang Shao-Wen, Brown Charles D, Unnikrishnan Govind, Stamper-Kurn Dan
Department of Physics, University of California, Berkeley, California 94720, USA.
Fakultät für Physik und Astronomie, Universität Würzburg, 97074 Würzburg, Germany.
Phys Rev Lett. 2020 Sep 25;125(13):133001. doi: 10.1103/PhysRevLett.125.133001.
Geometric frustration of particle motion in a kagome lattice causes the single-particle band structure to have a flat s-orbital band. We probe this band structure by placing a Bose-Einstein condensate into excited Bloch states of an optical kagome lattice, and then measuring the group velocity through the atomic momentum distribution. We find that interactions renormalize the band structure, greatly increasing the dispersion of the third band, which is nearly non-dispersing the single-particle treatment. Calculations based on the lattice Gross-Pitaevskii equation indicate that band structure renormalization is caused by the distortion of the overall lattice potential away from the kagome geometry by interactions.
在 Kagome 晶格中,粒子运动的几何阻挫导致单粒子能带结构具有一个平坦的 s 轨道能带。我们通过将玻色-爱因斯坦凝聚体置于光学 Kagome 晶格的激发布洛赫态中,然后通过原子动量分布测量群速度,来探测这种能带结构。我们发现相互作用使能带结构重整化,极大地增加了第三能带的色散,而在单粒子处理中该能带几乎是无色散的。基于晶格 Gross-Pitaevskii 方程的计算表明,能带结构重整化是由相互作用使整体晶格势偏离 Kagome 几何结构的畸变所引起的。