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Naji, M. |
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Motta, Antonella |
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Aletan, Dirar |
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Mohamed, Tarek |
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Ertürk, Emre |
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Taccardi, Nicola |
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Kononenko, Denys |
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Petrov, R. H. | Madrid |
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Alshaaer, Mazen | Brussels |
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Bih, L. |
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Casati, R. |
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Muller, Hermance |
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Kočí, Jan | Prague |
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Šuljagić, Marija |
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Kalteremidou, Kalliopi-Artemi | Brussels |
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Azam, Siraj |
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Ospanova, Alyiya |
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Blanpain, Bart |
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Ali, M. A. |
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Popa, V. |
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Rančić, M. |
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Ollier, Nadège |
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Azevedo, Nuno Monteiro |
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Landes, Michael |
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Rignanese, Gian-Marco |
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Webb, David J.
Aston University
in Cooperation with on an Cooperation-Score of 37%
Topics
Publications (46/46 displayed)
- 2023Long-period gratings for monitoring the resin transfer molding of fiber-reinforced polymer compositescitations
- 2016Passive and portable polymer optical fiber cleavercitations
- 2016Microstructured polymer optical fibre sensors for opto-acoustic endoscopycitations
- 2015Fiber-optic liquid level monitoring system using microstructured polymer fiber Bragg grating array sensorscitations
- 2015Highly sensitive liquid level sensor using a polymer optical Bragg grating for industrial applicationscitations
- 2015High performance liquid-level sensor based on mPOFBG for aircraft applications
- 2015High performance liquid level monitoring system based on polymer fiber Bragg gratings embedded in silicone rubber diaphragmcitations
- 2015Highly sensitive liquid level monitoring system utilizing polymer fiber Bragg gratingscitations
- 2014WDM sensor network approach
- 2014A self-referenced optical intensity sensor network using POFBGs for biomedical applicationscitations
- 2014A self-referenced optical intensity sensor network using POFBGs for biomedical applicationscitations
- 2014WDM sensor network approach: Bridging the gap towards POF-based photonic sensing
- 2013Potential for broad range multiplexing of fibre Bragg gratings in polymer optical fibres and operation in the 700-nm wavelength range
- 2013A fast response intrinsic humidity sensor based on an etched singlemode polymer fiber Bragg gratingcitations
- 2013Influence of mounting on the hysteresis of polymer fiber Bragg grating strain sensorscitations
- 2013Acousto-optic effect in microstructured polymer fiber bragg gratingscitations
- 2012Hydrostatic pressure sensing using a polymer optical fibre Bragg gratingscitations
- 2012Demountable connection for polymer optical fiber grating sensorscitations
- 2011Photonic crystal fiber Bragg grating based sensors: opportunities for applications in healthcarecitations
- 2011Embedded multiplexed polymer optical fiber sensor for esophageal manometrycitations
- 2011Embedded multiplexed polymer optical fiber sensor for esophageal manometrycitations
- 2011Research activities arising from the University of Kentcitations
- 2011Photonic crystal fiber Bragg grating based sensorscitations
- 2011Humidity insensitive TOPAS polymer fiber Bragg grating sensor
- 2011Humidity insensitive TOPAS polymer fiber Bragg grating sensorcitations
- 2011Humidity sensitivity of topas optical fibre bragg grating
- 2011Utilisation of thermal annealing to record multiplexed FBG sensors in multimode microstructured polymer optical fibrecitations
- 2011870nm Bragg grating in single mode TOPAS microstructured polymer optical fibrecitations
- 2011Dynamic strain sensor using a vcsel and a polymer fiber bragg grating in a multimode fiber
- 2010Measurements of polarimetric sensitivity to hydrostatic pressure, strain and temperature in birefringent dual-core microstructured polymer fibercitations
- 2010Multiplexed FBG sensor recorded in multimode microstructured polymer optical fibre
- 2010Highly sensitive bend sensor based on Bragg grating in eccentric core polymer fibercitations
- 2010827nm Bragg grating sensor in multimode microstructured polymer optical fibrecitations
- 2010Polarimetric sensitivity to hydrostatic pressure and temperature in birefringent dual-core microstructured polymer fibercitations
- 2010Polymer photonic crystal fibre for sensor applicationscitations
- 2010Polymer fiber bragg gratingscitations
- 2009Long period fibre gratings photoinscribed in a microstructured polymer optical fibre by UV radiation
- 2007Recent developments of Bragg gratings in PMMA and TOPAS polymer optical fibers
- 2007Electrically tunable Bragg gratings in single mode polymer optical fibercitations
- 2006Grating based devices in polymer optical fibrecitations
- 2006Fibre Bragg gratings recorded in microstructured polymer optical fibre
- 2005Continuous wave ultraviolet light-induced fiber Bragg gratings in few- And single-mode microstructured polymer optical fibers
- 2005Continuous wave ultraviolet light-induced fiber Bragg gratings in few- And single-mode microstructured polymer optical fiberscitations
- 2005Strain and temperature sensitivity of a single-mode polymer optical fibercitations
- 2005Strain and temperature sensitivity of a single-mode polymer optical fiber
- 2000First in-vivo trials of a fibre Bragg grating based temperature profiling systemcitations
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document
Potential for broad range multiplexing of fibre Bragg gratings in polymer optical fibres and operation in the 700-nm wavelength range
Abstract
Refractive index and structural characteristics of optical polymers are strongly influenced by the thermal history of the material. Polymer optical fibres (POF) are drawn under tension, resulting in axial orientation of the polymer molecular chains due to their susceptibility to align in the fibre direction. This change in orientation from the drawing process results in residual strain in the fibre and also affects the transparency and birefringence of the material (1-3). PMMA POF has failure strain as high as over 100%. POF has to be drawn under low tension to achieve this value. The drawing tension affects the magnitude of molecular alignment along the fibre axis, thus affecting the failure strain. The higher the tension the lower the failure stain will be. However, the properties of fibre drawn under high tension can approach that of fibre drawn under low tension by means of an annealing process. Annealing the fibre can generally optimise the performance of POF while keeping most advantages intact. Annealing procedures can reduce index difference throughout the bulk and also reduce residual stress that may cause fracture or distortion. POF can be annealed at temperatures approaching the glass transition temperature (Tg) of the polymer to produce FBG with a permanent blue Bragg wave-length shift at room temperature. At this elevated temperature segmental motion in the structure results in a lower viscosity. The material softens and the molecular chains relax from the axial orientation causing shrinking of the fibre. The large attenuation of typically 1dB/cm in the 1550nm spectral region of PMMA POF has limited FBG lengths to less than 10cm. The more expensive fluorinated polymers with lower absorption have had no success as FBG waveguides. Bragg grating have been inscribed onto various POF in the 800nm spectral region using a 30mW continuous wave 325nm helium cadmium laser, with a much reduced attenuation coefficient of 10dB/m (5). Fabricating multiplexed FBGs in the 800nm spectral region in TOPAS and PMMA POF consistently has lead to fabrication of multiplexed FBG in the 700nm spectral region by a method of prolonged annealing. The Bragg wavelength shift of gratings fabricated in PMMA fibre at 833nm and 867nm was monitored whilst the POF was thermally annealed at 80°C. Permanent shifts exceeding 80nm into the 700nm spectral region was attained by both gratings on the fibre. The large permanent shift creates the possibility of multiplexed Bragg sensors operating over a broad range.<br/>--------------------------------------------------------------------------------------------------------------------<br/>1. Pellerin C, Prud'homme RE, Pézolet M. Effect of thermal history on the molecular orientation in polystyrene/poly (vinyl methyl ether) blends. Polymer. 2003;44(11):3291-7.<br/>2. Dvoránek L, Machová L, Šorm M, Pelzbauer Z, Švantner J, Kubánek V. Effects of drawing conditions on the properties of optical fibers made from polystyrene and poly (methyl methacrylate). Die Angewandte Makromolekulare Chemie. 1990;174(1):25-39.<br/>3. Dugas J, Pierrejean I, Farenc J, Peichot JP. Birefringence and internal stress in polystyrene optical fibers. Applied optics. 1994;33(16):3545-8.<br/>4. Jiang C, Kuzyk MG, Ding JL, Johns WE, Welker DJ. Fabrication and mechanical behavior of dye-doped polymer optical fiber. Journal of applied physics. 2002;92(1):4-12.<br/>5. Johnson IP, Webb DJ, Kalli K, Yuan W, Stefani A, Nielsen K, et al., editors. Polymer PCF Bragg grating sensors based on poly (methyl methacrylate) and TOPAS cyclic olefin copolymer2011: SPIE.