Nanofilm-coated long-period fiber grating humidity sensors for corrosion detection in structural health monitoring

Long-period gratings (LPGs) have shown their significant promising applications in sensors owing to the attractive features that they posses such as small size, immunity for electromagnetic interference, geometric versatility, multiplexing capability, and resistance to corrosive and hazardous environments. Recent researches have revealed that LPGs written on the standard optical fibers could be used as a powerful sensing platform for structural health monitoring. In this work, we inscribe LPGs into SMF-28 optical fiber by focused-beam CO2 laser, demonstrating as a refractive index sensor for nondestructive chemical detections in the civil infrastructures. Although evanescent-field based LPG sensors have been applied in quantitatively monitoring chemical analytes including moisture, chloride, and corrosion by-product, etc., the sensitivity, selectivity, and response time as well as thermo-stability of such sensors are still the issues for some special purposes. In order to improve those characteristics of the sensors, we propose two types of nano-film to be coated in grating region by electrostatic self-assembly (ESA) deposition processing. The primary coating does not affect on LPG transmission parameters such as resonance wavelength and its intensity that can be used for sensing, but it increases the sensitivity to refractive index change of surrounding material. The secondary coating is for selectively absorption of analyte molecule of interest. Response time of the nanofilm-coated LPG sensor is dependent on the analyte absorption and de-absorption rates as well as the thicknesses of the coating materials, which is also investigated. Multi-channel sensor system is being designed to monitor different analytes simultaneously, which is continuing to further explore the monitoring of structural health conditions through in situ measurements of corrosion in the concrete structures.

[1]  Ignacio Del Villar,et al.  Enhancement of sensitivity in long-period fiber gratings with deposition of low-refractive-index materials. , 2005, Optics letters.

[2]  I. del Villar,et al.  Two-Layer Nanocoatings in Long-Period Fiber Gratings for Improved Sensitivity of Humidity Sensors , 2008, IEEE Transactions on Nanotechnology.

[3]  Kenneth T. V. Grattan,et al.  Long period grating-based humidity sensor for potential structural health monitoring , 2008 .

[4]  Agostino Iadicicco,et al.  Cladding mode reorganization in high-refractive-index-coated long-period gratings: effects on the refractive-index sensitivity. , 2005, Optics letters.

[5]  Gero Decher,et al.  Fuzzy Nanoassemblies: Toward Layered Polymeric Multicomposites , 1997 .

[6]  Siddharth Ramachandran,et al.  Highly sensitive optical response of optical fiber long period gratings to nanometer-thick ionic self-assembled multilayers , 2005 .

[7]  Philippe Lalanne,et al.  Optimization of sensitivity in Long Period Fiber Gratings with overlay deposition. , 2005, Optics Express.

[8]  A. Cusano,et al.  Coated long-period fiber gratings as high-sensitivity optochemical sensors , 2006, Journal of Lightwave Technology.

[9]  I.R. Matias,et al.  Design of pH Sensors in Long-Period Fiber Gratings Using Polymeric Nanocoatings , 2007, IEEE Sensors Journal.

[10]  Tao Wei,et al.  Fabrication of long-period fiber gratings by CO2 laser irradiations for high temperature applications , 2007, SPIE Optics East.

[11]  S. Campopiano,et al.  Mode transition in high refractive index coated long period gratings. , 2006, Optics express.

[12]  Mark Seaver,et al.  Bragg grating-based fibre optic sensors in structural health monitoring , 2007, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.

[13]  Agostino Iadicicco,et al.  High-sensitivity optical chemosensor based on coated long-period gratings for sub-ppm chemical detection in water , 2005 .

[14]  Ignacio Del Villar,et al.  Deposition of overlays by electrostatic self-assembly in long-period fiber gratings. , 2005, Optics letters.

[15]  J S Sirkis,et al.  Evanescent wave long-period fiber bragg grating as an immobilized antibody biosensor. , 2000, Analytical chemistry.