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原子莫特绝缘体的量子猝灭。

Quantum quench of an atomic Mott insulator.

机构信息

Department of Physics, University of Illinois, 1110 West Green Street, Urbana, Illinois 61801, USA.

出版信息

Phys Rev Lett. 2011 Jun 10;106(23):235304. doi: 10.1103/PhysRevLett.106.235304.

Abstract

We study quenches across the Bose-Hubbard Mott-insulator-to-superfluid quantum phase transition by using an ultracold atomic gas trapped in an optical lattice. Quenching from the Mott insulator to the superfluid phase is accomplished by continuously tuning the ratio of Hubbard tunneling to interaction energy. Excitations of the condensate formed after the quench are measured by using time-of-flight imaging. We observe that the degree of excitation is proportional to the fraction of atoms that cross the phase boundary and that the quantity of excitations and energy produced during the quench have a power-law dependence on the quench rate. These phenomena suggest an excitation process analogous to the Kibble-Zurek mechanism for defect generation in nonequilibrium classical phase transitions.

摘要

我们通过使用被困在光晶格中的超冷原子气体来研究玻色-哈伯德莫特绝缘体能到超流量子相变的猝灭。通过连续调整哈伯德隧道到相互作用能量的比值来实现从莫特绝缘相到超流相的猝灭。通过飞行时间成像测量猝灭后形成的凝聚物的激发。我们观察到,激发的程度与穿过相边界的原子分数成正比,并且在猝灭期间产生的激发量和能量与猝灭速率呈幂律关系。这些现象表明激发过程类似于非平衡经典相变中缺陷产生的 Kibble-Zurek 机制。

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