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Synchronization of high-dimensional dynamical systems.

机译:高维动力系统的同步。

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摘要

There are many examples of high-dimensional systems in nature. Often these systems behave in synchrony even though they possess a large number of degrees of freedom. Far fewer of these types of systems exist in the laboratory, and even fewer techniques exist with which to analyze them. As experimental capability increases, and more high-dimensional laboratory systems are fabricated, universal tools must be developed to observe and analyze the dynamics of these systems. This thesis will present experiments and analysis of two high-dimensional systems, coupled fiber ring lasers and a liquid crystal spatial light modulator with optoelectronic feedback.; Two identically constructed mutually coupled erbium doped fiber ring lasers were studied and were found to synchronize at very low coupling strengths. Synchronization error was characterized as a function of coupling strength. Optical frequency-locking and hopping as a result of the mutual coupling was also observed. Methods for detecting the leader and follower laser as well as role switching, a form of spontaneous symmetry-breaking, were developed. These include a spatiotemporal representation of the intensities within each ring laser and the use of Karhunen-Loeve decomposition. A delay-differential equation model was developed and the numerical simulations were in agreement with the experiment. Chaotic communication was achieved in this system with bit rates of 125 MHz, limited by the detection speed.; A liquid crystal spatial light modulator (SLM) was also studied. When used as a dynamic holographic grating, this device allowed the fabrication of a variety of reshaped laser beams, including multiple Gaussian beams, optical billiards, and propagating Bessel beams. When configured in an optoelectronic feedback loop, the SLM displays spatiotemporal chaos and using the auxiliary system method, we have achieved generalized synchronization of this system. The space-time patterns as well as the transients to synchronization have been characterized as a function of the bias voltage across the liquid crystal. The analysis techniques used in this thesis can be applied to other high-dimensional systems.
机译:自然界中有许多高维系统的例子。即使这些系统具有大量的自由度,它们通常也经常会同步运行。这些类型的系统在实验室中存在的很少,甚至存在更少的分析它们的技术。随着实验能力的提高和更多高维实验室系统的制造,必须开发通用工具来观察和分析这些系统的动态。本文将介绍两个高维系统的实验和分析,它们是耦合光纤环形激光器和具有光电反馈的液晶空间光调制器。研究了两个相同构造的相互耦合的掺do光纤环形激光器,发现它们在非常低的耦合强度下同步。同步误差的特征在于耦合强度。还观察到由于互耦合导致的光学锁频和跳频。开发了用于检测引导者和跟随者激光以及角色切换(自发对称破坏形式)的方法。这些包括每个环形激光器内强度的时空表示以及Karhunen-Loeve分解的使用。建立了时滞-微分方程模型,数值模拟与实验吻合。在该系统中以125 MHz的比特率实现了混沌通信,受限于检测速度。还研究了液晶空间光调制器(SLM)。当用作动态全息光栅时,此设备允许制造各种重塑的激光束,包括多个高斯光束,光学台球和传播的贝塞尔光束。当在光电反馈回路中配置时,SLM显示时空混乱,并使用辅助系统方法,我们已经实现了该系统的广义同步。时空模式以及到同步的瞬变已被表征为液晶两端的偏置电压的函数。本文所使用的分析技术可以应用于其他高维系统。

著录项

  • 作者

    Rogers, Elizabeth Anne.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Physics Optics.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 149 p.
  • 总页数 149
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学 ;
  • 关键词

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