Waveguide Bragg Gratings in Ormocer®s for Temperature Sensing

被引:15
|
作者
Girschikofsky, Maiko [1 ]
Rosenberger, Manuel [1 ]
Foerthner, Michael [2 ]
Rommel, Mathias [3 ]
Frey, Lothar [2 ,3 ]
Hellmann, Ralf [1 ]
机构
[1] Univ Appl Sci Aschaffenburg, Appl Laser & Photon Grp, D-63743 Aschaffenburg, Germany
[2] Friedrich Alexander Univ Erlangen, Chair Electron Devices, D-91058 Erlangen, Germany
[3] Fraunhofer Inst Integrated Syst & Device Technol, D-91058 Erlangen, Germany
关键词
Bragg grating; temperature; humidity; hybrid polymer; Ormocer((R)); FABRICATION; PRESSURE; SENSOR;
D O I
10.3390/s17112459
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Embedded channel waveguide Bragg gratings are fabricated in the Ormocer((R)) hybrid polymers OrmoComp((R)), OrmoCore, and OrmoClad by employing a single writing step technique based on phase mask technology and KrF excimer laser irradiation. All waveguide Bragg gratings exhibit well-defined reflection peaks within the telecom wavelengths range with peak heights of up to 35 dB and -3 dB-bandwidths of down to 95 pm. Furthermore, the dependency of the fabricated embedded channel waveguide Bragg gratings on changes of the temperature and relative humidity are investigated. Here, we found that the Bragg grating in OrmoComp((R)) is significantly influenced by humidity variations, while the Bragg gratings in OrmoCore and OrmoClad exhibit linear and considerably high temperature sensitivities of up to -250 pm/C and a linear dependency on the relative humidity in the range of -9 pm/%.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Waveguide Bragg gratings in Ormocer hybrid polymers
    Girschikofsky, Maiko
    Foerthner, Michael
    Rommel, Mathias
    Frey, Lothar
    Hellmann, Ralf
    OPTICS EXPRESS, 2016, 24 (13): : 14725 - 14736
  • [2] Enhanced seismic sensing based on epoxy waveguide Bragg gratings
    Hessler, Steffen
    Bott, Patrick
    Kefer, Stefan
    Girschikofsky, Maiko
    Schmauss, Bernhard
    Hellmann, Ralf
    SPIE FUTURE SENSING TECHNOLOGIES, 2019, 11197
  • [3] Simultaneous refractive index and temperature sensing based on a fiber surface waveguide and fiber Bragg gratings
    Chen, Qi
    Wang, D. N.
    Gao, Feng
    OPTICS LETTERS, 2021, 46 (06) : 1209 - 1212
  • [4] Polymer planar waveguide Bragg gratings: Fabrication, characterization, and sensing applications
    Rosenberger, M.
    Hessler, S.
    Pauer, H.
    Girschikofsky, M.
    Roth, G. L.
    Adelmann, B.
    Woern, H.
    Schmauss, B.
    Hellmann, R.
    INTEGRATED OPTICS: DEVICES, MATERIALS, AND TECHNOLOGIES XXI, 2017, 10106
  • [5] Nonreciprocal waveguide Bragg gratings
    Kulishov, M
    Laniel, JM
    Bélanger, N
    Azaña, J
    Plant, DV
    OPTICS EXPRESS, 2005, 13 (08): : 3068 - 3078
  • [6] Fiber Bragg gratings for high temperature sensing applications
    Chojetzki, C
    Klaiberg, T
    Ommer, J
    Rothhardt, M
    Betz, D
    TECHNISCHES MESSEN, 2004, 71 (10): : 555 - 562
  • [7] Characterization of fibre Bragg gratings for temperature and strain sensing
    Mrad, Nezih
    Ivanov, Alexei
    Albert, Jacques
    Xiao, Gao Zhi
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2007, PTS 1 AND 2, 2007, 6529
  • [8] Temperature and polarisation insensitive Bragg gratings realised on silica waveguide on silicon
    Bosc, D
    Loisel, B
    Moisan, M
    Devoldere, N
    Legall, F
    Rolland, A
    ELECTRONICS LETTERS, 1997, 33 (02) : 134 - 136
  • [9] Research of temperature hysteresis rule on fiber Bragg gratings sensing
    Guo, Tuan
    Qiao, Xue-Guang
    Jia, Zhen-An
    Sun, An
    Chen, Chang-Yong
    2003, Board of Optronics Lasers (14):
  • [10] Multipoint High Temperature Sensing with Regenerated Fiber Bragg Gratings
    Dutz, Franz J.
    Lindner, Markus
    Heinrich, Andreas
    Seydel, Carl G.
    Bosselmann, Thomas
    Koch, Alexander W.
    Roths, Johannes
    FIBER OPTIC SENSORS AND APPLICATIONS XV, 2018, 10654