Laboratoire de Photonique et Nanostructures, LPN/CNRS, Route de Nozay, 91460 Marcoussis, France.
Nat Commun. 2013;4:1749. doi: 10.1038/ncomms2760.
Manipulation of nonlinear waves in artificial periodic structures leads to spectacular spatial features, such as generation of gap solitons or onset of the Mott insulator phase transition. Cavity exciton-polaritons are strongly interacting quasiparticles offering large possibilities for potential optical technologies. Here we report their condensation in a one-dimensional microcavity with a periodic modulation. The resulting mini-band structure dramatically influences the condensation process. Contrary to non-modulated cavities, where condensates expand, here, we observe spontaneous condensation in localized gap soliton states. Depending on excitation conditions, we access different dynamical regimes: we demonstrate the formation of gap solitons either moving along the ridge or bound to the potential created by the reservoir of uncondensed excitons. We also find Josephson oscillations of gap solitons triggered between the two sides of the reservoir. This system is foreseen as a building block for polaritonic circuits, where propagation and localization are optically controlled and reconfigurable.
人工周期性结构中非线性波的操控会产生显著的空间特征,例如间隙孤子的产生或莫特绝缘相相变的开始。腔激子极化激元是强相互作用的准粒子,为潜在的光学技术提供了巨大的可能性。在这里,我们报告了在具有周期性调制的一维微腔中它们的凝聚。由此产生的微带结构极大地影响了凝聚过程。与非调制腔中凝聚体扩展的情况相反,在这里,我们观察到在局域间隙孤子态中自发的凝聚。根据激发条件,我们进入不同的动力学状态:我们展示了沿脊移动或束缚在未凝聚激子库产生的势中的间隙孤子的形成。我们还发现了在库的两侧之间触发的间隙孤子的约瑟夫森振荡。这个系统被预见为极化激元电路的构建模块,其中传播和定位可以通过光学控制和可重构。