McLeod Robert R, Daiber Andrew J, McDonald Mark E, Robertson Timothy L, Slagle Timothy, Sochava Sergei L, Hesselink Lambertus
Siros Technologies Incorporated, San Jose, California, USA.
Appl Opt. 2005 Jun 1;44(16):3197-207. doi: 10.1364/ao.44.003197.
Micrometer-sized reflection holograms can be written into a rapidly rotating homogeneous photopolymer disk at the focus of a high-numerical-aperture beam and its retroreflection to implement high-capacity multilayer digital data storage. This retroreflection is generated by an optical system with positive unity magnification to ensure passive alignment of the counterpropagating beam. Analysis reveals that the storage capacity and transfer rate of this bit-based holographic storage system compare favorably with traditional page-based systems but at a fraction of the system complexity and cost. The analysis is experimentally validated at 532 nm by writing and reading 12 layers of microholograms in a 125-microm photopolymer disk continuously rotating at 3600 rpm. The experimental results predict a capacity limit of 140 Gbytes in a millimeter-thick disk or over 1 Tbyte with the wavelength and numerical aperture of Blu-Ray.
微米级反射全息图可以写入高速旋转的均匀光聚合物圆盘的高数值孔径光束焦点处,并通过其逆向反射来实现高容量多层数字数据存储。这种逆向反射由具有正单位放大率的光学系统产生,以确保反向传播光束的被动对准。分析表明,这种基于位的全息存储系统的存储容量和传输速率与传统的基于页的系统相比具有优势,但系统复杂度和成本仅为其一小部分。通过在以3600转/分钟连续旋转的125微米光聚合物圆盘中写入和读取12层微全息图,在532纳米波长下对该分析进行了实验验证。实验结果预测,在一毫米厚的圆盘中容量极限为140千兆字节,或者使用蓝光的波长和数值孔径时超过1太字节。