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Friedrich-Alexander-Universität Chair of Electron Devices
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      • Realisierung von Koppelkondensatoren für Betriebsspannungen über 1200V durch Integration von Parallelwiderständen
      • Hybrid polymer based Bragg grating sensors – Fundamental investigations and application
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  4. Hybrid polymer based Bragg grating sensors – Fundamental investigations and application

Hybrid polymer based Bragg grating sensors – Fundamental investigations and application

In page navigation: Research
  • Silicon Semiconductor Technology
    • Realisierung von Koppelkondensatoren für Betriebsspannungen über 1200V durch Integration von Parallelwiderständen
    • Hybrid polymer based Bragg grating sensors - Fundamental investigations and application
    • A Synergetic Training Network on Energy beam Processing: from Modelling to Industrial Applications
    • Atomic layer deposition of dopant source layers for semiconductor doping - Characterization and modelling of drive-in processes
  • Wide-Bandgap Devices
  • Anorganic Thin Film Electronics
  • Anorganische Dünnschichtelektronik
  • Quantum Technologies
  • Other Projects

Hybrid polymer based Bragg grating sensors – Fundamental investigations and application

Hybrid polymer based Bragg grating sensors - Fundamental investigations and application

(Third Party Funds Single)

Overall project:
Project leader: Lothar Frey
Project members:
Start date: 1. October 2013
End date:
Acronym: FR 713/10-2
Funding source: DFG-Einzelförderung / Sachbeihilfe (EIN-SBH)
URL:

Abstract

Aim of the project, entitled “Hybrid polymer based Bragg grating sensors - Fundamental investigations and application”, is the development of a new and innovative manufacturing method in order to fabricate photonic structures and devices. The novelty, from a technological perspective, is the combination of UV-enhanced substrate conformal imprint lithography (UV-SCIL) as a wafer-scale patterning technique used to imprint three-dimensional photonic structures into hybrid polymers and the UV-enhanced inscription of Bragg gratings into pre-structured elements. This combination enables a fabrication of three-dimensional photonic circuits using only two major process steps. Further on, a low surface roughness for reduced attenuation losses as well as a high accuracy of the transferred structures is expected by applying UV-SCIL. Waveguides, couplers and integrated Bragg gratings will be realized within the project. Such elements will be combined to a sensor element, which will then be qualified for sensing applications. Such fabricated devices are applicable for i.e. gas detection. Another main topic, which will be addressed within the project, is concerning material specific investigations. Chemical processes will be identified, leading to a UV-induced modification of the refractive index of hybrid polymers. Further on, the impact of humidity on photonic devices made from this material class will be analyzed. In parallel, a complete simulation of the inscription process of the Bragg gratings will be performed in order to support and round up the experimental work.  

 

Publications

  • Girschikofsky MG., Förthner M., Rommel M., Frey L., Hellmann R.:
    Fabrication of Bragg grating sensors in UV-NIL structured Ormocer waveguides
    Integrated Optics: Devices, Materials, and Technologies XXI 2017
    DOI: 10.1117/12.2249665
  • Girschikofsky MG., Förthner M., Rommel M., Frey L., Hellmann R.:
    Bragg gratings in imprinted Ormocer® waveguides
    24th International Conference on Plastic Optical Fibers, POF 2015
    URL: https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84964659470&origin=inward
  • Girschikofsky MG., Rosenberger M., Förthner M., Rommel M., Frey L., Hellmann R.:
    Waveguide Bragg Gratings in Ormocer®s for Temperature Sensing
    In: Sensors 17 (2017), Article No.: 2459
    ISSN: 1424-8220
    DOI: 10.3390/s17112459
  • Förthner M., Papenheim M., Rumler M., Stumpf F., Baier L., Rommel M., Scheer HC., Frey L.:
    Polymerization related deformations in multilayer soft stamps for nanoimprint
    In: Journal of Applied Physics 122 (2017), Article No.: 165305
    ISSN: 0021-8979
    DOI: 10.1063/1.5001463
  • Förthner M., Rumler M., Stumpf F., Fader R., Rommel M., Frey L., Girschikofsky M., Belle S., Hellmann R., Klein JJ.:
    Hybrid polymers processed by substrate conformal imprint lithography for the fabrication of planar Bragg gratings
    In: Applied Physics A-Materials Science & Processing 122 (2016)
    ISSN: 0947-8396
    DOI: 10.1007/s00339-016-9767-6

Chair of Electron Devices
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