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Three-dimensional guided-free-space multistage optoelectronic fanout interconnection using wavelength division multiplexing and space division multiplexing

机译:使用波分复用和空分复用的三维导引自由空间多级光电扇出互连

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Abstract: An integrated 3-D guided-free-space 4-stage optoelectronic fan-out (6 $MUL 6, 2 $MUL 6, 6 $MUL 6 and 2 $MUL 6) interconnect using WDDM is proposed and demonstrated together with 2 $MUL 4 $MUL 5 3-D optoelectronic fan-out using SDDM. This channel separation is one order of magnitude smaller than that using wavelength-selective detecting technique in WDDM. Signal to noise ratio of 57 dB is experimentally determined, with two channel 40 (2 $MUL 4 $MUL 5) fan-outs having a channel separation of 600 $mu@m in SDDM. The interconnection scheme presented herein allows each pixel within a transmitting plane to communicate simultaneously and reconfigurably with many pixels in the subsequent planes in a truly three-dimensional feature. This system can utilize vertical cavity surface emitting laser diodes, photo detecting planes and planarized guided-free-space fan-out interconnects, allowing compact multi-stage integration. By using two-dimensional spatially separated or multiplexed hologram arrays on a thin light guiding plate, the interconnection capability is greatly enhanced as compared to other techniques. This novel optoelectronic interconnect should find widespread applications in microelectronics systems and fiber-optic communication networks. In this paper, we report the demonstration of a new solution that employs guided-free-space optical parallel fan-out interconnects. It takes advantage of such exclusive characteristics of optical interconnects as high packing density, massive single- wavelength fan-out and wavelength multiplexibility. Unlike the previously reported research, the interconnection scheme presented herein allows each pixel in a transmitting plane to communicate simultaneously and reconfigurably with many pixels in the subsequent planes with a truly three-dimensional (3-D) feature. Moreover, WD(D)M configuration can be maintained while extending into space-division-demultiplexing (SDDM) based on the fact that each VCSEL is spatially separated in the transmitting plane. As a result, each channel does not need to have many laser diodes operating at different wavelengths in order to facilitate the spontaneous communications with many pixels in the detecting planes. This new approach significantly reduces the fabrication requirements imposed on the laser diodes (with multiple output wavelengths) and on the photodetectors (with wavelength-selectivity). A one-to-one 2-D interconnect scheme is extended into a one-to-many 3-D one. !16
机译:摘要:提出并使用WDDM演示了集成的3-D引导式自由空间4级光电扇出(6 $ MUL 6,2 $ MUL 6,6 $ MUL 6和2 $ MUL 6)互连。 $ MUL 4 $ MUL 5使用SDDM的3-D光电扇出。此通道间隔比WDDM中使用波长选择检测技术的通道间隔小一个数量级。实验确定了57 dB的信噪比,其中两个通道40(2 $ MUL 4 $ MUL 5)扇出在SDDM中的通道间隔为600 $ mu @ m。本文提出的互连方案允许发射平面内的每个像素以真正的三维特征与后续平面中的许多像素同时且可重构地通信。该系统可以利用垂直腔表面发射激光二极管,光检测平面和平面化的引导式自由空间扇出互连,从而实现紧凑的多级集成。通过在薄的导光板上使用二维空间上分离或复用的全息图阵列,与其他技术相比,互连能力得到了极大的增强。这种新颖的光电互连应该在微电子系统和光纤通信网络中找到广泛的应用。在本文中,我们报告了一种采用导引自由空间光学并行扇出互连的新解决方案的演示。它利用了诸如高封装密度,大规模单波长扇出和波长复用性之类的光学互连的独有特性。与先前报道的研究不同,本文介绍的互连方案允许传输平面中的每个像素与后续平面中的多个像素同时且可重配置地进行通信,并具有真正的三维(3-D)功能。此外,基于每个VCSEL在发射平面中在空间上分离的事实,可以在扩展到空分多路分解(SDDM)的同时保持WD(D)M配置。结果,每个通道不需要具有工作在不同波长的许多激光二极管,以便于与检测平面中的许多像素进行自发通信。这种新方法大大降低了对激光二极管(具有多个输出波长)和光电探测器(具有波长选择性)的制造要求。一对一的2-D互连方案扩展为一对多的3-D方案。 !16

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