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Optical RAM Row Access using WDM-enabled All-Passive Row/Column Decoders

机译:使用启用WDM的全无源行/列解码器进行光学RAM行访问

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摘要

Towards achieving a functional RAM organization that reaps the advantages offered by optical technology, a complete set of optical peripheral modules, namely the Row (RD) and Column Decoder (CD) units, is required. In this perspective, we demonstrate an all-passive 2×4 optical RAM RD with row access operation and subsequent all-passive column decoding to control the access of WDM-formatted words in optical RAM rows. The 2×4 RD exploits a WDM-formatted 2-bit-long memory WordLine address along with its complementary value, all of them encoded on four different wavelengths and broadcasted to all RAM rows. The RD relies on an all-passive wavelength-selective filtering matrix (λ-matrix) that ensures a logical '0' output only at the selected RAM row. Subsequently, the RD output of each row drives the respective SOA-MZI-based Row Access Gate (AG) to grant/block the entry of the incoming data words to the whole memory row. In case of a selected row, the data word exits the row AG and enters the respective CD that relies on an all-passive wavelength-selective Arrayed Waveguide Grating (AWG) for decoding the word bits into their individual columns. Both RD and CD procedures are carried out without requiring any active devices, assuming that the memory address and data word bits as well as their inverted values will be available in their optical form by the CPU interface. Proof-of-concept experimental verification exploiting cascaded pairs of AWGs as the λ-matrix is demonstrated at 10Gb/s, providing error-free operation with a peak power penalty lower than 0.2dB for all optical word channels.
机译:为了获得可利用光学技术带来的优势的功能性RAM组织,需要一套完整的光学外围模块,即行(RD)和列解码器(CD)单元。从这个角度出发,我们演示了具有行访问操作和随后的全无源列解码的全无源2×4光学RAM RD,以控制光学RAM行中WDM格式字的访问。 2×4 RD利用WDM格式的2位长存储字线地址及其互补值,它们全部在四个不同的波长上编码并广播到所有RAM行。 RD依赖于全无源波长选择滤波矩阵(λ-matrix),该矩阵可确保仅在选定的RAM行上输出逻辑“ 0”。随后,每行的RD输出驱动相应的基于SOA-MZI的行访问门(AG),以允许/阻止进入的数据字进入整个存储行。在选定行的情况下,数据字退出行AG并进入相应的CD,该CD依赖于全无源波长选择性阵列波导光栅(AWG)来将字位解码为它们的各个列。假设内存地址和数据字位以及它们的取反值将通过其光学形式由CPU接口使用,则无需任何有源设备即可执行RD和CD过程。以10Gb / s的速度演示了利用AWG的级联对作为λ矩阵的概念验证实验验证,可为所有光学字通道提供无误操作,且峰值功率损失低于0.2dB。

著录项

  • 来源
    《Optical components and materials XI》|2014年|89821R.1-89821R.6|共6页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki, Greece,Dept. of Informatics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece;

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki, Greece,Dept. of Informatics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece;

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki, Greece;

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki, Greece,Dept. of Informatics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece;

    Information Technologies Institute, Center for Research Technology Hellas, 57001, Thessaloniki, Greece,Dept. of Informatics, Aristotle University of Thessaloniki, 54124, Thessaloniki, Greece;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optical Row Decoder (RD); Optical Column Decoder (CD); Semiconductor Optical Amplifier (SOA); Mach-Zehnder Interferometer (MZI); optical memory; optical RAM; optical signal processing;

    机译:光行解码器(RD);光柱解码器(CD);半导体光放大器(SOA);马赫曾德尔干涉仪(MZI);光学存储器光学RAM;光信号处理;

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