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Integrated surface emitting laser arrays with flat-tip microprobes for the near-field optical data storage

机译:集成表面发射激光阵列,具有平尖微型计算机,用于近场光学数据存储

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Current optical data storage is challenging to increase its memory capacity and data transfer rate for realizing high-quality image and rapid service in the coming digital, multimedia and network era. To actualize more effective and simple data storage, a novel parallel near-field optical system has been proposed using vertical cavity surface emitting laser (VCSEL) microprobe arrays. The new parallel optical system is based a multibeam recording head consisting of a VCSEL array with apertures of nanometer size as a near-field wave exit. We have developed some candidates for the parallel recording head, including the direct aperture formation on the VCSEL emitting surface and the preparation of microprobe arrays with flat-tip structure. The new flat-tip microprobe array has advantages for improving the optical efficiency and stabilizing the contact head system with optical media since it is prepared from semiconductor materials of high refractive index. Silicon nano-aperture probe array has been prepared successfully with the aperture size of 150 to 500nm using micro-fabrication techniques. We have also investigated the integrated microprobe array by the direct fabrication of flat-tip probes on the substrate of bottom emitting VCSEL arrays. Finally the reading mechanism has been studied theoretically using a finite difference time domain (FDTD) simulation and an optical feedback effect of semiconductor lasers for the integrated microprobe VCSEL array. We believe this nano-aperture VCSEL probe array is sufficiently effective to be applied to the parallel recording head for the near-field optical data storage of a high data capacity and fast transfer rate.
机译:目前的光学数据存储是挑战,以提高其内存容量和数据传输速率,以实现即将到来的数字,多媒体和网络时代的高质量图像和快速服务。为了实现更有效和简单的数据存储,使用垂直腔表面发射激光器(VCSEL)微探针阵列提出了一种新颖的并行近场光学系统。新的并行光学系统基于由VCSEL阵列组成的多波束记录头,该阵列具有纳米尺寸的孔径作为近场波出口。我们已经开发了一些用于平行记录头的候选者,包括在VCSEL发射表面上的直接孔径形成和具有平尖结构的微探针阵列的制备。新的扁平尖端微探针阵列具有改善光学效率并用光学介质稳定接触头系统的优点,因为它由高折射率的半导体材料制备。使用微制造技术,已成功制备硅纳米孔径探针阵列,孔径为150至500nm。我们还通过直接制造底部发射VCSEL阵列的基板上的平坦尖端探针的直接制造来研究集成微探针阵列。最后,使用有限差分时域(FDTD)仿真理论上研究了读取机制,以及用于集成微探针VCSEL阵列的半导体激光器的光学反馈效果。我们认为该纳米孔径VCSEL探针阵列足够有效地应用于具有高数据容量和快速传输速率的近场光学数据存储的平行记录头。

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