完整后设资料纪录
DC 栏位 | 值 | 语言 |
---|---|---|
dc.contributor.author | 柯富仁 | en_US |
dc.contributor.author | Fu-Jen Ko | en_US |
dc.contributor.author | 谢汉萍 | en_US |
dc.contributor.author | Han-Ping D. Shieh | en_US |
dc.date.accessioned | 2014-12-12T02:24:19Z | - |
dc.date.available | 2014-12-12T02:24:19Z | - |
dc.date.issued | 1999 | en_US |
dc.identifier.uri | http://140.113.39.130/cdrfb3/record/nctu/#NT880614030 | en_US |
dc.identifier.uri | http://hdl.handle.net/11536/66363 | - |
dc.description.abstract | 随着多媒体资讯(Multimedia)与网路(Internet)时代的来临,影像与资讯的交流益形迅速,各种新型显示影像文字的显示技术应运而生。而伴随着这些显示技术的发展,各种各样新型光学元件与技术也不断被提出,来解决各种显示元件所面临的问题。其中微光学元件(Microoptical Components)由于具有轻、薄以及平面化等优点,发展十分迅速,亦逐渐被应用在新型的显示元件上。 平面显示器(Flat Display)是显示器的主流,在轻量化、薄型化、与高影像品质等各项要求下,微光学元件是提升显示器显像品质的主要光学技术。本论文利用折射/绕射(refraction/diffraction)光学原理,并发展利用精密加工、半导体微影蚀刻 (lithography /Etching) 与塑胶翻模 (plastic molding) 等微光学的各种制程技术,设计制做出各样的平面化(planar)微光学元件,来提升液晶显示器中的亮度、色彩、对比等影像品质等问题。 由于液晶显示器使用彩色滤光器(color filter)来产生颜色,使得光的使用效率上仅有约1/3的光效率使用。本论文提出高效率彩色滤光器,利用微型棱镜结构(micro-prism)与光学干涉式(optical interference)多层镀膜的彩色滤光镀膜,可使彩色滤光器的光效率使用提升2倍以上,有效提升液晶显示器的亮度。 在改善液晶显示器的显示品质方面,由于液晶显示器的彩色滤光器以红、绿、蓝三色子画素(sub-pixel)构成一完整画素(pixel)结构,并在三色子画素间以黑矩阵(black matrix)相隔以达到增加对比(contrast)、保护薄膜电晶体等功能。此黑矩阵造成了液晶显示器的显示画面有明显的画素结构,尤其在单片式液晶投影系统中,经投影放大后,此画素结构会更加明显,造成影像的不自然写真与观赏。为了克服单片式液晶投影系统的明显画素结构,本论文设计制作一分光光栅(fan-out grating)元件,将每一子画素的画素影像加以复制并有效填补画素间的黑矩阵空隙,减轻影像的不连续现象,优化单片式液晶投影系统的影像品质。 在直视型反射式液晶显示器(direct view reflective LCDs)中,为了达到省电的目的,利用液晶显示器底部的反射面(reflector)来反射环境光,光线在两次穿透液晶层后经液晶层调变而产生影像。但是对一平面反射面而言,斜向入射的环境光经镜面反射后亦斜向出射,使得接近使用者观察方向的正向方向的影像亮度不足,同时由于液晶显示器表面反射的杂散光,恰与经调变的反射影像光同一方向,亦造成影像对比度不佳。为了改善此缺点,本论文提出离轴设计(off-axis)的非对称微透镜阵列(asymmetric microlens array) 此元件可将入射环境光加以偏折至接近正向方向,使得观赏者观察角度范围内的影像亮度增加,同时减低表面反射,可同步增加影像的对比度。如此可大幅改善反射式液晶显示器的影像品质,并增加其应用的范围。 | zh_TW |
dc.description.abstract | As the trend of multimedia, Internet and communication applications, various display technologies to present mass information in image, text, and video, are rapidly developed to fulfill the demands of vast amount of information exchange. To facilitate the development of display technologies, various new optical components and technologies are proposed to resolve the issues in display performance. Among these optical technologies, microoptical components, due to the advantages of light, thin, and planar structure, are being rapidly developed and well applied for novel applications, including enhancement of display image quality. Flat panel display is the major trend for display technologies. In order to meet the requirements of light weight, compact size, low power consumption, and high image quality, microoptical components provide key solutions to fulfill the demands and to improve the quality of display devices. In this thesis, based on the refraction/diffraction optical component design, various fabrication technologies, including precise machining, VLSI lithography/etching, and plastic molding, are used to develop several planar microoptical components to improve image performance of liquid crystal displays in various aspects, such as brightness, color, contrast, and image quality. Because the conventional color filters of LCDs transmit needed spectrum and absorb the undesired spectrum to achieve display colors, the efficiency of this type of color filter is of no more than 33%. In this thesis work, we proposed high efficiency color filters comprised of microprisms and interference color filters to redistribute the total energy of entire spectrum to the respective color subpixels, generating color for viewing. As a result, the efficiency of the color filters has been improved by more than a factor of 2, effectively increased the overall brightness of LCDs. In an active-matrix liquid-crystal display (AMLCDs), each pixel is controlled by a thin film transistor and surrounded by data and gate electrodes, causing an opaque area of "dead space" between pixels. In the LCDs projection system, the "grain-like" pixel structure resulting from the dead space produces an uncomfortable discontinuous sight in viewing. We designed and fabricated a multilevel "fan-out" grating to duplicate the image of each color sub-pixels and then fill the dead space between each pixel. Simultaneously, the spatial frequency of the color subpixel distribution within the total images is increased. Consequently, the grain-like pixel structure in projection images is suppressed, at a small cost of the resolution of image. Reflective LCDs, without a built-in light source, utilizing the ambient light as main source for illumination are of low power consumption. Conventional reflective LCDs with a metallic reflector reflect modulated light for viewing. Under oblique illumination, the specular reflection of planar reflector reflects the oblique incident light to the corresponding reflection angle, so that the viewers can not view the brightest image in the typical viewing region, at normal direction of LCDs. Moreover, the brightest reflected image is at the glare angle where reflection from the front glass, causing the reduction in contrast. To resolve the above deficiencies, we developed an "off-axis microlens array light control film" to enhance both the brightness and contrast of reflective LCDs. The off-axis microlens light control film directs incident light into a reflection cone near normal direction. Therefore, the brightness of image in the typical viewing region of viewers is increased, and contrast ratio of image is also enhanced by suppressing surface reflection. As a result, the image quality of reflective LCDs can be greatly enhanced to achieve the various applications in portable, hand-held devices. | en_US |
dc.language.iso | en_US | en_US |
dc.subject | 微光学 | zh_TW |
dc.subject | 显示元件 | zh_TW |
dc.subject | 显示器 | zh_TW |
dc.subject | 影像品质 | zh_TW |
dc.subject | microoptics | en_US |
dc.subject | display devices | en_US |
dc.subject | display | en_US |
dc.subject | image performance | en_US |
dc.title | 微型光学元件在提升显示元件影像品质的应用 | zh_TW |
dc.title | Microoptical Components in Enhancing Display Image Performance Applications | en_US |
dc.type | Thesis | en_US |
dc.contributor.department | 光电工程学系 | zh_TW |
显示于类别: | Thesis |