Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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Materials Map under construction

The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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693.932 PEOPLE
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Naji, M.
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Stefani, Alessio

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Fraunhofer Institute for Integrated Circuits

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (31/31 displayed)

  • 2021Thermally drawn biodegradable fibers with tailored topography for biomedical applications20citations
  • 2019Fabrication of Soft-Glass-Based Wire Array Metamaterial Fibers for Applications at Infrared Frequencies8citations
  • 2019Effects of pressurization and surface tension on drawing Ge-Sb-Se chalcogenide glass suspended-core fiber2citations
  • 2018Stack-and-draw microstructured optical fiber with Ge28Sb12Se60 chalcogenide glass1citations
  • 2017Zeonex microstructured polymer optical fiber: fabrication friendly fibers for high temperature and humidity insensitive Bragg grating sensing149citations
  • 2017Split-ring resonators hyperlens for undistorted sub-wavelength imagingcitations
  • 2016Single mode step-index polymer optical fiber for humidity insensitive high temperature fiber Bragg grating sensors128citations
  • 2016Fabrication and characterization of polycarbonate microstructured polymer optical fibers for high-temperature-resistant fiber Bragg grating strain sensors128citations
  • 2016Temperature insensitive hysteresis free highly sensitive polymer optical fiber Bragg grating humidity sensor224citations
  • 2016Creation of a microstructured polymer optical fiber with UV Bragg grating inscription for the detection of extensions at temperatures up to 125°C1citations
  • 2015Humidity insensitive step-index polymer optical fibre Bragg grating sensors4citations
  • 2015Production and Characterization of Polycarbonate Microstructured Polymer Optical Fiber Bragg Grating Sensorcitations
  • 2015Thermally tunable bandgaps in a hybrid As2S3/silica photonic crystal fiber1citations
  • 2013High-Tg TOPAS microstructured polymer optical fiber for fiber Bragg grating strain sensing at 110 degrees195citations
  • 2013High-T g TOPAS microstructured polymer optical fiber for fiber Bragg grating strain sensing at 110 degrees195citations
  • 2012Dynamic Characterization of Polymer Optical Fibers76citations
  • 2012High Sensitivity Polymer Optical Fiber-Bragg-Grating-Based Accelerometer174citations
  • 2012Cleaving of TOPAS and PMMA microstructured polymer optical fibers: Core-shift and statistical quality optimization71citations
  • 2012Temperature compensated, humidity insensitive, high-Tg TOPAS FBGs for accelerometers and microphones2citations
  • 2012Tunable Polymer Fiber Bragg Grating (FBG) Inscription: Fabrication of Dual-FBG Temperature Compensated Polymer Optical Fiber Strain Sensors108citations
  • 2012Direct Writing of Fiber Bragg Grating in Microstructured Polymer Optical Fiber40citations
  • 2012Fiber design and realization of point-by-point written fiber Bragg gratings in polymer optical fibers4citations
  • 2011Narrow Bandwidth 850-nm Fiber Bragg Gratings in Few-Mode Polymer Optical Fibers76citations
  • 2011Viscoelastic limit of polymer optical fibers: characterization of the dynamic responsecitations
  • 2011Humidity insensitive TOPAS polymer fiber Bragg grating sensorcitations
  • 2011Humidity insensitive TOPAS polymer fiber Bragg grating sensor247citations
  • 2011Optical fibre Bragg grating recorded in TOPAS cyclic olefin copolymer100citations
  • 2011870nm Bragg grating in single mode TOPAS microstructured polymer optical fibre10citations
  • 2011Bragg Grating Based Sensors in Microstructured Polymer Optical Fibers: Accelerometers and Microphonescitations
  • 2010Grating writing and growth at 325nm in non-hydrogenated silica fibercitations
  • 2009Dispersion-engineered and highly-nonlinear microstructured polymer optical fibrescitations

Places of action

Chart of shared publication
Fraser, Stuart T.
1 / 1 shared
Innis, Peter C.
1 / 1 shared
Boumelhem, Badwi B.
1 / 1 shared
Farajikhah, Syamak
1 / 1 shared
Large, Maryanne C. J.
1 / 5 shared
Fleming, Simon
5 / 6 shared
Rukhlenko, Ivan D.
1 / 3 shared
Runge, Antoine F. J.
1 / 4 shared
Sayyar, Sepidar
1 / 2 shared
Kuhlmey, Boris T.
4 / 4 shared
Hayash, Juliano G.
1 / 1 shared
Lwin, Richard
1 / 1 shared
Argyros, Alexander
1 / 16 shared
Ebendorff-Heidepriem, Heike
2 / 11 shared
Wu, Shengling
1 / 1 shared
Shengling, Wu
1 / 1 shared
Hayashi, Juliano G.
1 / 1 shared
Markos, Christos
11 / 46 shared
Fasano, Andrea
6 / 20 shared
Rasmussen, Henrik Koblitz
12 / 62 shared
Woyessa, Getinet
7 / 47 shared
Bang, Ole
25 / 142 shared
Argyro, Alexander
1 / 1 shared
Hayashi, Juliano Grigoleto
1 / 1 shared
Nielsen, Kristian
12 / 54 shared
Krebber, Katerina
2 / 7 shared
Stajanca, Pavol
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Krebber, K.
1 / 2 shared
Stajanca, P.
1 / 1 shared
Yuan, Scott Wu
7 / 8 shared
Rasmussen, Henrik K.
2 / 10 shared
Yuan, Wu
5 / 6 shared
Andresen, Søren
2 / 2 shared
Herholdt-Rasmussen, Nicolai
1 / 1 shared
Guastavino, R.
1 / 1 shared
Nielsen, F. K.
1 / 1 shared
Andresen, S.
2 / 2 shared
Yuan, W.
1 / 4 shared
Jespersen, O.
1 / 1 shared
Herholdt-Rasmussen, N.
1 / 1 shared
Rose, B.
1 / 2 shared
Markos, C.
1 / 2 shared
Stecher, Matthias
2 / 2 shared
Town, G. E.
1 / 1 shared
Town, Graham E.
2 / 3 shared
Webb, David J.
3 / 46 shared
Kalli, Kyriacos
3 / 23 shared
Khan, Lutful
1 / 2 shared
Khan, Lutul
1 / 1 shared
Khan, L.
1 / 2 shared
Johnson, I. P.
1 / 3 shared
Webb, D. J.
1 / 19 shared
Kalli, K.
1 / 6 shared
Frosz, Michael Henoch
1 / 4 shared
Hlubina, Petr
1 / 4 shared
Chart of publication period
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Co-Authors (by relevance)

  • Fraser, Stuart T.
  • Innis, Peter C.
  • Boumelhem, Badwi B.
  • Farajikhah, Syamak
  • Large, Maryanne C. J.
  • Fleming, Simon
  • Rukhlenko, Ivan D.
  • Runge, Antoine F. J.
  • Sayyar, Sepidar
  • Kuhlmey, Boris T.
  • Hayash, Juliano G.
  • Lwin, Richard
  • Argyros, Alexander
  • Ebendorff-Heidepriem, Heike
  • Wu, Shengling
  • Shengling, Wu
  • Hayashi, Juliano G.
  • Markos, Christos
  • Fasano, Andrea
  • Rasmussen, Henrik Koblitz
  • Woyessa, Getinet
  • Bang, Ole
  • Argyro, Alexander
  • Hayashi, Juliano Grigoleto
  • Nielsen, Kristian
  • Krebber, Katerina
  • Stajanca, Pavol
  • Krebber, K.
  • Stajanca, P.
  • Yuan, Scott Wu
  • Rasmussen, Henrik K.
  • Yuan, Wu
  • Andresen, Søren
  • Herholdt-Rasmussen, Nicolai
  • Guastavino, R.
  • Nielsen, F. K.
  • Andresen, S.
  • Yuan, W.
  • Jespersen, O.
  • Herholdt-Rasmussen, N.
  • Rose, B.
  • Markos, C.
  • Stecher, Matthias
  • Town, G. E.
  • Town, Graham E.
  • Webb, David J.
  • Kalli, Kyriacos
  • Khan, Lutful
  • Khan, Lutul
  • Khan, L.
  • Johnson, I. P.
  • Webb, D. J.
  • Kalli, K.
  • Frosz, Michael Henoch
  • Hlubina, Petr
OrganizationsLocationPeople

article

Dynamic Characterization of Polymer Optical Fibers

  • Stefani, Alessio
  • Yuan, Wu
  • Andresen, Søren
  • Bang, Ole
Abstract

With the increasing interest in fiber sensors based on polymer optical fibers, it becomes fundamental to determine the real applicability and reliability of this type of sensor. The viscoelastic nature of polymers gives rise to questions about the mechanical behavior of the fibers. In particular, concerns on the response in the nonstatic regime find foundation in the viscoelasticity theory. We investigate the effects of such behavior via analysis of the mechanical properties under dynamic excitations. It is shown that for low strain (0.28%), the Young's modulus is constant for frequencies up to the limit set by our measurement system. A more detailed analysis shows that viscoelastic effects are present and that they increase with both applied strain and frequency. However, the possibility of developing sensors that measure small dynamic deformations is not compromised. A stress-relaxation experiment for larger deformations (2.8%) is also reported and a relaxation time around 5 s is measured, defining a viscosity of 20 GPa·s.

Topics
  • impedance spectroscopy
  • polymer
  • theory
  • experiment
  • viscosity
  • viscoelasticity