• DocumentCode
    1154842
  • Title

    Near hexagonal close-packed optical fiber array for parallel optical interconnection

  • Author

    Yang, Chun ; Zhang, MingDe ; Xia, Zhichao

  • Author_Institution
    Dept. of Electron. Eng., Southeast Univ., Nanjing, China
  • Volume
    28
  • Issue
    3
  • fYear
    2005
  • Firstpage
    542
  • Lastpage
    548
  • Abstract
    In conventional optical fiber based two-dimensional (2-D) parallel optical interconnection (POI), optical fiber arrays are aligned to 2-D light sources and detectors using precisely fabricated hole-plate or stacked V-groove plates. All these structures have problems in making positioning components and assembly with high accuracy. For polymer optical fibers with large diameter, the whole dimension of the array will be too large if they are positioned using V-grooves or hole-plate. This paper proposes a 2-D near hexagonal close-packed (NHCP) optical fiber array for 2-D POI. NHCP array has a cross-sectional profile of near-hexagonal lattice and with fibers precisely positioned at each node of lattice. Compared with perfect HCP lattice, NHCP lattice is slightly stretched in one dimension and still have all fibers with nonuniform diameter packed tightly with high packing fraction. The position of fibers in NHCP array is very important when aligned to 2-D light sources and detectors. This paper deduce the analytically expression for the probability distribution of fiber position which is related to variance of fiber diameter and structure parameters of NHCP array, and verified it by computer simulation. Experiment samples of NHCP array have been made showing that NHCP array is easy to be fabricated.
  • Keywords
    integrated optics; optical arrays; optical interconnections; optical polymers; 2D light detector; 2D light source; 2D parallel optical interconnection; NHCP lattice; V-groove plate; computer simulation; hole-plate; near hexagonal close-packed array; near-hexagonal lattice; optical fiber array; optical fiber connection; optical fiber device; polymer optical fibers; probability distribution; Analysis of variance; Assembly; Lattices; Light sources; Optical arrays; Optical fibers; Optical interconnections; Optical polymers; Sensor arrays; Two dimensional displays; Optical arrays; optical fiber connecting; optical fiber devices; optical fibers; optical interconnections;
  • fLanguage
    English
  • Journal_Title
    Components and Packaging Technologies, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1521-3331
  • Type

    jour

  • DOI
    10.1109/TCAPT.2005.848578
  • Filename
    1501956