标题: 应用于提升表面型微加工的光学读写头功能之微光学次系统
Micro-optical Subsystems for Enhancing the Function of a Surface Micro-machined Pickup
作者: 李企桓
chi-hung lee
谢汉萍
H P David Shieh
光电工程学系
关键字: 面型微加工;光学读写头;多光束光栅;极化分光器;反射系统;surface micromaching;optical pickup;multibeam grating;polarization beam splitter;reflective system
公开日期: 2007
摘要: 随着数位资讯时代的来临与网际网路的普及,消费性电子产品不断朝向可携
式化、轻薄短小化、省电、低功率输出的方向前进。利用微机电制程技术来设计与制作相容于现今光学读写系统的光学元件具有体积小、重量轻及适合于批次制造的优点。而自由空间型将所有元件同时制作在一晶片上,具有在设计光罩时即完成光学元件间的对准工作的优点。然而自由空间型仍面临许多问题,诸如多晶矽制作的光学元件仅可应用于使用近红外光(780 nm)的CD碟片,无法应用于使用650 nm的DVD碟片及405 nm的HD-DVD碟片,而单光束读写碟片及分光镜效率偏低更严重限制其功能。为了改善这些问题,本论文提出了以在可见光波段具有高穿透性的低应力氮化矽取代原先的多晶矽,并结合光栅与微型致动器设计出一可切换式光栅,其可发展成一可切换单/多光束的微型光学读写头。此外,利用多层光学膜的原理,我们制作出可应用于微型光学读写头的高效率极化分光器,以让自由空间型的微型光学读写头被更广泛且成功地应用在光储存领域。为进一步发展出CD/DVD/HD-DVD光碟相容的微型读写头,本论文提出一种二维的微型反射系统,此系统的概念可用于验证相容型的微型读写头的可行性。
传统上,具备可切换单/多光束功能的光学读写头是以电压控制的液晶元件或以一磁控致动器来移动多光束光栅以切换单光束写入及多光束读取的状态。然此二种方式均导致读写头的体积及成本大幅提高。而本论文则成功开发出“微型可切换式多光束光栅”,完全可由微机电制程制作出,除具备体积小,成本低之优点外,控制简易。此可切换式多光束光栅是由一微型抬升臂致动器及一多光束相位光栅所组成。
而极化分光器在光学读写头上主要是用来将光分成两个极化方向互相正交的光束。并搭配四分之一波片,可同时提高去光路的穿透光效率与反射光光效率。一般的极化分光器主要是利用大体积的双折射晶体或高成本的镀膜玻璃来制作,均不适合整合于微型光学读写头。本论文所成功开发出“微型高效率极化分光器”,利用多层膜光学的原理,我们将空气层与低应力氮化矽薄膜层堆叠,建构出在可见光区段具有低损耗及高极化分光效率之极化分光器。
第三种元件为一种二维的反射系统,其包括一抛物形反射面镜及一菱镜。其中抛物形反射面镜系在单晶矽层中蚀刻出一抛物形沟槽(trench)而成,可将经抛物面焦点的入射光以平行抛物面光轴方向反射出或将平行抛物面光轴方向的入射光反射且经抛物面焦点而出。菱镜为一Porro(45°-90°-45°)型,主要是将入射光以平行原入射方向反射出,且入射位置与出射位置间存在一位移。藉由适当组合抛物形反射面镜与菱镜的位置,可使入射光以特定反射角度反射出。最大扫描角度可达传统二维的反射面镜的三至四倍以上,扫描时光以垂直角度进出波导,故扫描角度不因Snell’s law而缩减,光绕射损失低,反射中心于扫描期间无偏移现象。
本论文中展现了以微机电技术所制作的微型光学元件于光储存产业的重大应用潜力,且结合微光学设计与微光机电制程的微型光学系统技术,也将在未来高科技产业中具有益形重要的地位。
In the era of multimedia, internet and mobile communication, features of portable , thin, light weight and power saving are required for consuming electronic products. Compared with conventional optical pickup systems, micromachinical optical pickup systems are smaller, lighter and can be made by a batch-fabrication technology.
Among the proposed micro optical pickups, the free-space polysilicon optical bench has been realized on a single chip, on which all the optical elements can be precisely prealigned during the mask design stage. However, this device used thin-polysilicon films as optical patterns and suffered from absorption of visible light by polysilicon. Another challenge in this device was that only a single beam was used by the micro-optical pickup to read and write a disc. Moreover, the beam splitter in the device was of low efficiency. These seriously limit its performance.
In this thesis, to overcome the above issues, a transparent material for visible light was derived from low stress silicon nitride and improved the light efficiency. Besides, two novel components, a switchable grating and a high efficiency polarized beam splitter, were designed to further enhance the performance of the free-space optical pickup.
Conventionally, the switching function can be realized by using a voltage-controlled liquid crystal grating or a magnet-actuated glass grating. The two approaches still suffer from the difficult assembly of optical components of large size and high cost. Therefore, we propose “a micro switchable grating,” which is composed of a stress-induced curved micro actuator and a phase-type grating on the tip of the actuator.
In an optical pickup, a polarized beam splitter (PBS) is used with a quarter-wave plate to improve the transmittance of the forward polarized light and the reflectance of the backward polarized light. Conventionally, the PBS is realized using a birefringence crystal or a films-coated glass. The former is large in size, while the latter is of high cost. Therefore, a micro PBS consisting of a novel stack of two silicon nitride layers separated by an air gap was developed in our research to possess the same function.
Besides, a planar micro-reflective system composed of a parabolic mirror, a prism, and a thermal actuator was demonstrated to verify the feasibility of a CD/DVD/HD-DVD compatible micro-pickup. A mechanical scan angle of 38 degrees was demonstrated by applying the developed planar reflective system, which displayed more than three times the scan angle compared to that of a conventional rotary mirror. The optical simulation about the deflected beam deviating from the optical axis of the planar reflective system was also presented, and good agreement between theory and experiment is achieved.
This dissertation has successfully demonstrated the great potentials of the micro switchable grating, the micro PBS, and the micro-reflective system. These sub-systems can be achieved using the surface micromachining, potentially also at very low cost. The size of them is also dramatically reduced. Further, the fabrication of these subsystems is compatible with other micro diffractive elements. This makes them feasible to build a multi-function micro-optical pickup for short wavelength optical storage applications in the near future.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT009124816
http://hdl.handle.net/11536/54602
显示于类别:Thesis


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