论文标题
搅拌的光学晶格中的直流电流
Direct current in a stirred optical lattice
论文作者
论文摘要
我们研究了如何在搅拌的强度下将晶格的定期圆形搅拌到二阶的循环搅拌,从而改变了液体晶格中的剂量原子的能量分散。如果晶格断裂镜像对称性,则骨气原子可能会在布里渊区中心获得非零组速度并产生非零直流电流。该作用类似于固态物理学中的圆形光钙化效应。它可用于在任意方向上在给定距离上的光学晶格中传输中性骨气原子。但是,当驱动频率被解剖以避免能够吸收能量的谐振转变时,我们认为诱导的电流不是持续的,而是瞬时。对诱导电流松弛的实验研究可以为有关驱动系统中平衡的困惑问题提供答案。
We study how the energy dispersion of bosonic atoms loaded into an optical lattice becomes modified due to periodic circular stirring of the lattice to the second order in the strength of stirring. If the lattice breaks mirror symmetry, the bosonic atoms may acquire a nonzero group velocity at the center of the Brillouin zone and produce a nonzero direct current. This effect is similar to the circular photogalvanic effect in solid-state physics. It can be used to transport neutral bosonic atoms in an optical lattice over a given distance in an arbitrary direction. However, when the drive frequency is detuned to avoid resonant transitions with energy absorption, we argue that the induced current is not persistent, but transient. An experimental study of the induced current relaxation could give answers to perplexing questions about equilibrization in driven systems.