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Characterization of polygrama green photopolymer for Compact Optoelectronic Integrated Neural (COIN) coprocessor applications

机译:用于紧凑型光电集成神经(COIN)协处理器应用的polygrama绿色光聚合物的表征

摘要

The research described in this thesis is a portion of a larger project within the Photonic Systems Group at MIT to design Compact Optoelectronic Integrated Neural (COIN) co processor [13]. The choice of photopolymers is critical in determining the performance of COIN processors as we look at ways to increase the diffraction efficiency. The focus of this research was to optically characterize Polygrama Green, a photopolymer that is sensitive to green light (514 nm). We were able to plot diffraction efficiency versus the exposure energy density for a series of gratings. We found the maximum diffraction efficiency to be that of the 678 mJ/cm2 grating with a value of 29.5%. We were able to fit the data to a sin2(x) curve with a X2- value of 20.79. We concluded that this somewhat high X2-value is due to our low number of data points. However, using Kogelnik's equation and the measured diffraction efficiency of each grating, we were also able to calculate the An, of each grating. This analysis shows that Polygrama Green seems to be a promising candidate for the photopolymer used in subsequent optoelectronic neural network applications.
机译:本文中描述的研究是麻省理工学院光子系统小组内部一个较大项目的一部分,该项目旨在设计紧凑型光电集成神经网络(COIN)协处理器[13]。当我们寻找提高衍射效率的方法时,光聚合物的选择对于确定COIN处理器的性能至关重要。这项研究的重点是光学表征Polygrama Green,它是一种对绿光(514 nm)敏感的光敏聚合物。我们能够绘制出一系列光栅的衍射效率与曝光能量密度的关系图。我们发现最大衍射效率是678 mJ / cm2光栅的最大衍射效率,值为29.5%。我们能够将数据拟合为X2-值为20.79的sin2(x)曲线。我们得出的结论是,X2值较高的原因是数据点数量少。但是,使用Kogelnik方程和每个光栅的测量衍射效率,我们也能够计算每个光栅的An。该分析表明,Polygrama Green似乎是后续光电神经网络应用中使用的光敏聚合物的有前途的候选者。

著录项

  • 作者

    Harton Renee M;

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  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 eng
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