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Polarization analysis in nonlinear optics and multiphoton microscopy .

机译:非线性光学中的偏振分析和多光子显微镜。

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摘要

Second harmonic generation (SHG) has developed into a powerful tool for characterizing oriented thin films, surfaces, and interfaces. Furthermore, the nonlinear optical nature of the wave-mixing processes typically results in the generation of a coherent signal beam with a well-defined polarization state. This coherence offers unique opportunities for extraction of detailed molecular and surface properties from polarization analysis. In previous studies, nonlinear optical ellipsometry (NOE) has been developed as a means to retain the relative sign and phase information between the different nonzero chi(2) tensor elements present in a given sample. However, those methods and related approaches for polarization analysis have all relied on the mechanical movement of optical elements in order to perform the analysis. The time required to physically move the appropriate optical elements ultimately dictates the fastest analysis time possible in a given technique (generally several hours for full ellipsometric detection). Such long acquisition times have limited NOE analysis to systems exhibiting excellent photostability and frustrated attempts at kinetics and microscopy applications.;Development of nonlinear optical Stokes ellipsometry (NOSE) is described and developed in this thesis to alleviated many of these problems. By increasing the repetition rate of the laser system and replacing previously slow rotating polarization optics with a rapid photoelastic modulator, the acquisition time with full polarization analysis has been reduced from several hours to a fraction of a second. This more than four order of magnitude reduction in acquisition time is accompanied by an order of magnitude increase in precision in the chi(2) tensors than previously achieved. These improvements have enabled imaging with full ellipsometric analysis at each pixel, allowing a unique contrast mechanism based on principle component analysis of the polarization dependent signal. Additionally insight into crystal quality for x-ray diffraction studies and orientation of chiral crystals is accessible.
机译:二次谐波生成(SHG)已发展成为一种功能强大的工具,用于表征定向的薄膜,表面和界面。此外,混波过程的非线性光学性质通常导致产生具有明确定义的偏振态的相干信号束。这种一致性为从极化分析中提取详细的分子和表面性质提供了独特的机会。在以前的研究中,非线性光学椭圆仪(NOE)已被开发为保留给定样本中存在的不同非零chi(2)张量元素之间的相对符号和相位信息的手段。然而,那些用于偏振分析的方法和相关方法全部依靠光学元件的机械运动来执行分析。物理上移动适当的光学元件所需的时间最终决定了在给定技术中可能的最快分析时间(对于完全椭偏检测通常为几个小时)。如此长的采集时间将NOE分析限制在表现出出色的光稳定性以及在动力学和显微镜应用中表现出挫败性的系统上。本论文描述并开发了非线性光学斯托克斯椭圆偏光法(NOSE)来缓解这些问题。通过提高激光系统的重复率并用快速的光弹性调制器代替以前缓慢旋转的偏振光学器件,全偏振分析的采集时间已从几小时减少到几分之一秒。采集时间的减少幅度超过四个数量级,同时chi(2)张量中的精度也比以前达到的数量级增加了。这些改进使成像在每个像素处具有完整的椭偏分析,从而允许基于偏振相关信号的主成分分析的独特对比机制。此外,对于X射线衍射研究的晶体质量和手性晶体的取向也有深入的了解。

著录项

  • 作者

    Begue, Nathan J.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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