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Substrate birefringence and its effects on the performance of optical disk data storage systems.

机译:基板双折射及其对光盘数据存储系统性能的影响。

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This dissertation examines several aspects of optical disk data storage with particular emphasis on substrate birefringence and how it affects these data storage systems. In future generations of optical disk systems, to increase the areal density, shorter wavelengths as well as larger numerical aperture objectives will have to be used to reduce the size of the focused spot at the storage layer. With shorter wavelengths and higher numerical apertures, substrate birefringence will become a large enough problem that new methods will have to be developed to eliminate it or compensate for it.; The birefringence present in optical disk substrates is due primarily to the material, polycarbonate, and to the manufacturing process, injection molding. Since the read and write beams are focused through the substrate, the wavefronts become aberrated due to this birefringence.; In Chapter 3, we investigate the behavior of substrate birefringence as a function of temperature. This study reveals that the in-plane birefringence changes dramatically within the investigated range of temperatures, while the vertical birefringence in good measure remains constant. We suspect that the change in birefringence is due primarily to thermally induced stress in the substrate.; Next, in Chapter 4, we investigate a proposed recording scheme for magneto-optical data storage called land/groove recording. In the scheme of land/groove recording in magneto-optical disk data storage systems, it has been shown that an optimum groove depth exists at which the cross-talk from adjacent tracks diminishes. Cross-talk cancellation, however, is very sensitive to various parameters of the system and, in particular, the presence of substrate birefringence can have devastating effects on system performance.; In Chapter 5, we will examine some of the more subtle effects of the disk substrate in optical data storage systems such as feedback into the laser diode in compact disk systems. Our modeling of the compact disk system led us to discover a new technique for rapid measurement of the substrate birefringence.; Finally, we have investigated a certain kind of manufactured birefringence. High spatial frequency surface-relief gratings on dielectric media can behave as homogeneous birefringent materials if the grating period is less than the wavelength of the incident light. Chapter 6 describes a technique using high refractive index thin films to fabricate submicron gratings that provide very large phase retardations. Appendix A contains detailed instructions for the reader who desires to fabricate this type of grating. (Abstract shortened by UMI.)
机译:本文研究了光盘数据存储的几个方面,尤其着重于基板双折射及其对这些数据存储系统的影响。在未来的光盘系统中,为了增加面密度,必须使用更短的波长以及更大的数值孔径物镜来减小存储层聚焦点的尺寸。在较短的波长和较高的数值孔径的情况下,基板双折射将成为一个足够大的问题,因此必须开发新的方法来消除或补偿它。光盘基板中存在的双折射主要归因于材料聚碳酸酯以及制造工艺的注塑成型。由于读和写光束聚焦在基板上,因此,由于这种双折射,波前变得像差。在第三章中,我们研究了衬底双折射行为与温度的关系。这项研究表明,在所研究的温度范围内,面内双折射发生了显着变化,而垂直双折射在一定程度上保持不变。我们怀疑双折射的变化主要归因于基板中的热诱导应力。接下来,在第4章中,我们研究了一种建议的磁光数据存储记录方案,称为陆/槽记录。在磁光盘数据存储系统中的岸台/凹槽记录方案中,已经表明存在最佳凹槽深度,在该最佳凹槽深度处,来自相邻磁道的串扰减小。然而,串扰消除对系统的各种参数非常敏感,特别是基板双折射的存在可能对系统性能产生毁灭性影响。在第5章中,我们将研究光学数据存储系统中磁盘基板的一些更微妙的影响,例如光盘系统中激光二极管的反馈。我们对光盘系统的建模使我们发现了一种用于快速测量基板双折射的新技术。最后,我们研究了某种制造的双折射。如果光栅周期小于入射光的波长,则介电介质上的高空间频率浮雕光栅可以充当均匀的双折射材料。第6章介绍了一种使用高折射率薄膜来制造提供非常大的相位延迟的亚微米光栅的技术。附录A包含了详细的说明,供需要制作此类光栅的读者阅读。 (摘要由UMI缩短。)

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