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Persistent holographic storage in photorefractive crystals.

机译:光折射晶体中的永久全息存储。

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摘要

The work presented in this thesis has been focused on solving the most important and long-lasting problem of destructive read-out in holographic recording in photorefractive crystals. Several interesting methods for solving this problem were proposed and demonstrated by researchers for more than two decades. However, none of them were practical for read/write applications. The most promising all-optical method, which is still being pursued by some researchers, was two-step recording. However, the method suffers from low sensitivity and dynamic range, even in the optimized conditions. Furthermore, several experimental results were not explained due to the lack of a complete understanding of the dominant phenomena that were involved.; Our strategy in solving the problem of destructive read-out of holograms was to first provide a complete understanding of physics of the method by appropriate modeling, and to explain the experimental results that had not been explained before. Such an understanding gave us a good idea about the major problem of the method, and we were able to find a solution to that problem by adding one dopant to the recording crystal. The method we developed both theoretically and experimentally in this thesis is called two-center holographic recording. The initial results of the method (without any optimization) offer more than one order of magnitude (and for some parameters, two orders of magnitude) improvement over the optimized two-step recording method.; In this thesis, we provide a complete modeling for two-center recording that agrees very well with the experimental results, provides us with the understanding of the main physical phenomena that are involved, and helps us in optimizing the method. The next step is to relate the materials and system parameters for the system design. We present in this thesis a standard framework for such a relation, and outline the main general steps in the system design using two-center recording. The idea developed in this thesis opens us several avenues for further thinking and research, and some of them are already being investigated by different research groups.; The main goal in the work presented in this thesis has been the understanding of the basic physical principles in each recording scheme, and using such understanding to find the main sources for each problem that needs to be solved. Knowing the source of a problem is always helpful in finding possible solutions faster. To reach the main goal, we tried to develop an appropriate model for each recording method and use the model to explain the experimental observations. On the other hand, we performed different experiments to test the theoretical predictions of each model. Such a combination of theory and experiment is very helpful in developing a good understanding of the basic physical mechanisms involved in each case, and the research is much more successful if we carefully understand what is going on!
机译:本文提出的工作一直集中于解决光折射晶体全息记录中最重要和持久的破坏性读出问题。二十多年来,研究人员提出并证明了几种解决该问题的有趣方法。但是,它们都不适合读/写应用程序。一些研究人员仍在追求的最有前途的全光学方法是两步记录。但是,该方法即使在最佳条件下也具有灵敏度低和动态范围低的缺点。此外,由于对所涉及的主要现象缺乏完全的了解,因此没有解释几个实验结果。我们解决全息图破坏性读取问题的策略是,首先通过适当的建模全面了解该方法的物理原理,并解释以前没有解释过的实验结果。这样的理解为我们提供了关于该方法主要问题的好主意,并且我们能够通过在记录晶体中添加一种掺杂剂来找到该问题的解决方案。我们在理论上和实验上开发的方法称为两中心全息记录。该方法的初始结果(不进行任何优化)与优化的两步记录方法相比,提供了一个以上数量级的改进(对于某些参数,则为两个数量级)。在本文中,我们提供了一个完整的两中心记录建模,该模型与实验结果非常吻合,使我们对所涉及的主要物理现象有所了解,并有助于我们优化方法。下一步是为系统设计关联材料和系统参数。我们在本文中提出了一种用于这种关系的标准框架,并概述了使用两中心记录的系统设计中的主要常规步骤。本文提出的思想为我们提供了进一步思考和研究的几种途径,其中一些已经被不同的研究小组进行了研究。本文工作的主要目的是对每种记录方案的基本物理原理的理解,并利用这种理解为每个需要解决的问题找到主要来源。知道问题的根源始终有助于更快地找到可能的解决方案。为了达到主要目的,我们尝试为每种记录方法开发一个合适的模型,并使用该模型解释实验观察结果。另一方面,我们执行了不同的实验来测试每个模型的理论预测。理论和实验的这种结合对于深入理解每种情况下所涉及的基本物理机制非常有帮助,并且如果我们仔细了解正在发生的事情,则该研究将更加成功!

著录项

  • 作者

    Adibi, Ali.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.; Physics Optics.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 241 p.
  • 总页数 241
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;光学;工程材料学;
  • 关键词

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