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通过调节二分光学晶格中的粒子数不平衡来控制相干性。

Controlling coherence via tuning of the population imbalance in a bipartite optical lattice.

作者信息

Di Liberto M, Comparin T, Kock T, Ölschläger M, Hemmerich A, Smith C Morais

机构信息

Institute for Theoretical Physics, Centre for Extreme Matter and Emergent Phenomena, Utrecht University, Leuvenlaan 4, 3584CE Utrecht, The Netherlands.

1] Institute for Theoretical Physics, Centre for Extreme Matter and Emergent Phenomena, Utrecht University, Leuvenlaan 4, 3584CE Utrecht, The Netherlands [2] Laboratoire de Physique Statistique, École Normale Supérieure, UPMC, Université Paris Diderot, CNRS, 24 rue Lhomond, 75005 Paris, France.

出版信息

Nat Commun. 2014 Dec 11;5:5735. doi: 10.1038/ncomms6735.

Abstract

The control of transport properties is a key tool at the basis of many technologically relevant effects in condensed matter. The clean and precisely controlled environment of ultracold atoms in optical lattices allows one to prepare simplified but instructive models, which can help to better understand the underlying physical mechanisms. Here we show that by tuning a structural deformation of the unit cell in a bipartite optical lattice, one can induce a phase transition from a superfluid into various Mott insulating phases forming a shell structure in the superimposed harmonic trap. The Mott shells are identified via characteristic features in the visibility of Bragg maxima in momentum spectra. The experimental findings are explained by Gutzwiller mean-field and quantum Monte Carlo calculations. Our system bears similarities with the loss of coherence in cuprate superconductors, known to be associated with the doping-induced buckling of the oxygen octahedra surrounding the copper sites.

摘要

对输运性质的控制是凝聚态物质中许多技术相关效应的关键基础工具。光学晶格中超冷原子的纯净且精确可控的环境使人们能够制备简化但具有启发性的模型,这有助于更好地理解潜在的物理机制。在此我们表明,通过调节二分光学晶格中晶胞的结构变形,能够诱导超流体到各种莫特绝缘相的相变,这些绝缘相在叠加的谐波陷阱中形成壳层结构。通过动量谱中布拉格峰可见性的特征来识别莫特壳层。实验结果由古兹维勒平均场和量子蒙特卡罗计算进行解释。我们的系统与铜酸盐超导体中相干性的丧失存在相似之处,已知这与铜位点周围氧八面体的掺杂诱导屈曲有关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/adba/4284656/d90da597677a/ncomms6735-f2.jpg

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