P. Blanche, A. Miles, B. Lynn, J. Wissinger, D. Carothers, R. Norwood, N. Peyghambarian
{"title":"Microsecond reconfigurable NxN data-communication switch using DMD","authors":"P. Blanche, A. Miles, B. Lynn, J. Wissinger, D. Carothers, R. Norwood, N. Peyghambarian","doi":"10.1117/12.2036780","DOIUrl":null,"url":null,"abstract":"We present here the use the DMD as a diffraction-based optical switch, where Fourier diffraction patterns are used to steer the incoming beams to any output configuration. We have implemented a single-mode fiber coupled N X N switch and demonstrated its ability to operate over the entire telecommunication C-band centered at 1550 nm. The all-optical switch was built primarily with off-the-shelf components and a Texas Instruments DLP7000™with an array of 1024 X 768 micromirrors. This DMD is capable of switching 100 times faster than currently available technology (3D MOEMS). The switch is robust to typical failure modes, protocol and bit-rate agnostic, and permits full reconfigurable optical add drop multiplexing (ROADM). The switch demonstrator was inserted into a networking testbed for the majority of the measurements. The testbed assembled under the Center for Integrated Access Networks (ClAN), a National Science Foundation (NSF) Engineering Research Center (ERC), provided an environment in which to simulate and test the data routing functionality of the switch. A Fujitsu Flashwave 9500 PS was used to provide the data signal, which was sent through the switch and received by a second Flashwave node. We successfully transmitted an HD video stream through a switched channel without any measurable data loss.","PeriodicalId":395835,"journal":{"name":"Photonics West - Micro and Nano Fabricated Electromechanical and Optical Components","volume":"53 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2014-03-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"2","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Photonics West - Micro and Nano Fabricated Electromechanical and Optical Components","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1117/12.2036780","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 2
Abstract
We present here the use the DMD as a diffraction-based optical switch, where Fourier diffraction patterns are used to steer the incoming beams to any output configuration. We have implemented a single-mode fiber coupled N X N switch and demonstrated its ability to operate over the entire telecommunication C-band centered at 1550 nm. The all-optical switch was built primarily with off-the-shelf components and a Texas Instruments DLP7000™with an array of 1024 X 768 micromirrors. This DMD is capable of switching 100 times faster than currently available technology (3D MOEMS). The switch is robust to typical failure modes, protocol and bit-rate agnostic, and permits full reconfigurable optical add drop multiplexing (ROADM). The switch demonstrator was inserted into a networking testbed for the majority of the measurements. The testbed assembled under the Center for Integrated Access Networks (ClAN), a National Science Foundation (NSF) Engineering Research Center (ERC), provided an environment in which to simulate and test the data routing functionality of the switch. A Fujitsu Flashwave 9500 PS was used to provide the data signal, which was sent through the switch and received by a second Flashwave node. We successfully transmitted an HD video stream through a switched channel without any measurable data loss.
我们在这里提出了使用DMD作为一个基于衍射的光开关,其中使用傅立叶衍射模式来引导入射光束到任何输出配置。我们已经实现了一个单模光纤耦合N X N交换机,并证明了其在整个电信c波段以1550nm为中心运行的能力。全光开关主要由现成的组件和德州仪器DLP7000™构建,该DLP7000™具有1024 X 768微镜阵列。这种DMD的切换速度比目前可用的技术(3D MOEMS)快100倍。该交换机对典型故障模式、协议和比特率不确定具有鲁棒性,并允许完全可重构的光加丢多路复用(ROADM)。开关演示器被插入到网络测试平台中进行大多数测量。在综合接入网中心(ClAN),国家科学基金会(NSF)工程研究中心(ERC)下组装的试验台提供了一个模拟和测试交换机数据路由功能的环境。使用富士通Flashwave 9500 PS提供数据信号,该信号通过交换机发送并由第二个Flashwave节点接收。我们成功地通过交换信道传输了高清视频流,没有任何可测量的数据丢失。