Optical Trajectory Manipulations Using the Self-Written Waveguide Technique

被引:5
|
作者
Malallah, Ra'ed [1 ,2 ]
Cassidy, Derek [1 ]
Wan, Min [1 ]
Muniraj, Inbarasan [1 ]
Healy, John J. [1 ]
Sheridan, John T. [1 ]
机构
[1] Univ Coll Dublin, Coll Engn & Architecture, Sch Elect & Elect Engn, Dublin D4, Ireland
[2] Univ Basrah, Fac Sci, Phys Dept, Garmat Ali 61004, Basrah, Iraq
关键词
self-written waveguide; photo-polymer; fiber optics; LASER-BEAMS; PHOTOPOLYMER; PROPAGATION; BEHAVIOR; GROWTH;
D O I
10.3390/polym12071438
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
This study is novel for several reasons: We used a thin drop cast layer of dry photosensitive materials to study the behaviors of wet photopolymer media using microscopic distances during the Self-Written Waveguide (SWW) process; then, we examined the self-trajectories formed inside the solid material. The results provide a framework for theoretical and experimental examinations by handling the effects of manipulating the alignment of fibers. The other main advantage of these techniques is their lightweight, easy to process, highly flexible, and ultimately low-cost nature. First, the SWW process in wet photopolymer media (liquid solutions) was examined under three cases: single-, counter-, and co-fiber exposure. Then, the SWWs formed inside the solid material were examined along with the effects of manipulating the alignment of the fibers. In all cases, high precision measurements were used to position the fiber optic cables (FOCs) before exposure using a microscope. The self-writing process was indirectly monitored by observing (imaging) the light emerging from the side of the material sample during SWW formation. In this way, we examined the optical waveguide trajectories formed in Acrylamide/Polyvinyl Alcohol (AA/PVA), a photopolymer material (sensitized at 532 nm). First, the transmission of light by this material is characterized. Then, the bending and merging of the waveguides that occur are investigated. The predictions of our model are shown to qualitatively agree with the observed trajectories. The largest index changes taking place at any time during exposure, i.e., during SWW formation, are shown to take place at the positions where the largest exposure light intensity is present. Typically, such maxima exist close to the input face. The first maximum is referred to as the location of thePrimary Eye. Other local maxima also appear further along the SWW and are referred to asSecondary Eyes, i.e., eyes deeper within the material.
引用
收藏
页码:1 / 12
页数:12
相关论文
共 50 条
  • [41] Investigation of near-infrared light induced photopolymerization and its application for self-written optical waveguide
    Terasawa H.
    Sugihara O.
    Journal of Japan Institute of Electronics Packaging, 2020, 23 (06) : 486 - 489
  • [42] Dynamics of a light induced self-written waveguide directional coupler in a photopolymer
    Jisha, C. P.
    Kuriakose, V. C.
    Porsezian, K.
    OPTICS COMMUNICATIONS, 2008, 281 (05) : 1093 - 1098
  • [43] Coupling Device by Self-Written Waveguide Technology for Optical Interconnection between Silicon Photonics Chip and Fiber
    Fujikawa C.
    Mikami O.
    Journal of Japan Institute of Electronics Packaging, 2022, 25 (02) : 166 - 171
  • [44] Waveguide shape control and loss properties of light-induced self-written (LISW) optical waveguides
    Yamashita, T
    Kagami, M
    Ito, H
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2002, 20 (08) : 1556 - 1562
  • [45] Tapered self-written waveguide for a silicon photonic chip I/O
    Saito, Yohei
    Shikama, Kota
    Tsuchizawa, Tai
    Sato, Norio
    OPTICS LETTERS, 2022, 47 (12) : 2971 - 2974
  • [46] Fiber-to-Fiber Optical Gain of Polymer-Based Amplifier with Self-Written Active Waveguide
    Yamashita, Kenichi
    Fukuzawa, Eshin
    Okada, Hiroyuki
    Oe, Kunishige
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2009, 48 (10) : 1024061 - 1024064
  • [47] Precisely positioned light-induced self-written (LISW) polymeric optical waveguide for optical transceiver module fabrication
    Matsui, T.
    Yamashita, T.
    Kagami, M.
    ACTIVE AND PASSIVE OPTICAL COMPONENTS FOR COMMUNICATIONS VI, 2006, 6389
  • [48] Light-induced self-written waveguide fabrication using 1550 nm laser light
    Terasawa, Hidetaka
    Tan, Freddy
    Sugihara, Okihiro
    Kawasaki, Akari
    Inoue, Daisuke
    Yamashita, Tatsuya
    Kagami, Manabu
    Maury, Olivier
    Bretonniere, Yann
    Andraud, Chantal
    OPTICS LETTERS, 2017, 42 (11) : 2236 - 2238
  • [49] Self-Written Waveguide (SWW) Optical Pin for High Optical Coupling in Multi-layer Printed Wiring Board
    Baharudin, Nurul Atiqah
    Ambran, Sumiaty
    Mikami, Osamu
    Fujikawa, Chiemi
    2016 IEEE 6TH INTERNATIONAL CONFERENCE ON PHOTONICS (ICP), 2016,
  • [50] Self-written waveguides in photopolymer
    Malallah, Ra'ed
    Cassidy, Derek
    Muniraj, Inbarasan
    Ryle, James P.
    Healy, John J.
    Sheridan, John T.
    APPLIED OPTICS, 2018, 57 (22) : E80 - E88