论文标题

锯齿形波导阵列中的离散孤子,在最近的邻居和下一个邻居耦合之间具有不同类型的线性混合

Discrete solitons in zigzag waveguide arrays with different types of linear mixing between nearest-neighbor and next-nearest-neighbor couplings

论文作者

Hu, Jinzhou, Li, Shulan, Chen, Zhaopin, Lu, Jiantao, Liu, Bin, Li, Yongyao

论文摘要

我们研究了锯齿形离散波导阵列中的离散孤子,在最近的邻居和下一个邻居耦合之间具有不同类型的线性混合。波导阵列是由以锯齿形形式排列的一维(1D)波导阵列的两层构造的。 If we alternately label the number of waveguides between the two layers, the cross-layer couplings (which couple one waveguide in one layer with two adjacent waveguides in the other layer) construct the nearestneighbor couplings, while the couplings that couple this waveguide with the two nearest-neighbor waveguides in the same layer, i.e., self-layer couplings, contribute the next-nearest-neighbor couplings.当这些耦合具有不同类型的线性混合时,发现两个离散孤子家族。随着总功率的增加,在一种类型的设置中,离散的孤子发生了第二种相变,这是在最近的邻居耦合和下一新的邻居偶联物分别具有正线性混合和负线性混合时形成的。在整本论文中,系统地讨论了这两个孤儿家族的迁移和碰撞,揭示了孤儿的宽度在其中起着重要作用

We study discrete solitons in zigzag discrete waveguide arrays with different types of linear mixing between nearest-neighbor and next-nearest-neighbor couplings. The waveguide array is constructed from two layers of one-dimensional (1D) waveguide arrays arranged in zigzag form. If we alternately label the number of waveguides between the two layers, the cross-layer couplings (which couple one waveguide in one layer with two adjacent waveguides in the other layer) construct the nearestneighbor couplings, while the couplings that couple this waveguide with the two nearest-neighbor waveguides in the same layer, i.e., self-layer couplings, contribute the next-nearest-neighbor couplings. Two families of discrete solitons are found when these couplings feature different types of linear mixing. As the total power is increased, a phase transition of the second kind occurs for discrete solitons in one type of setting, which is formed when the nearest-neighbor coupling and next-nearest-neighbor coupling feature positive and negative linear mixing, respectively. The mobilities and collisions of these two families of solitons are discussed systematically throughout the paper, revealing that the width of the soliton plays an important role in its

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