1D phase unwrapping based on the quasi-Gramian matrix and deep learning for interferometric optical fiber sensing applications

2021 ◽  
pp. 1-1
Author(s):  
Lei Kong ◽  
Ke Cui ◽  
Jiabin Shi ◽  
Ming Zhu ◽  
Simeng Li
2020 ◽  
Vol 311 ◽  
pp. 127864 ◽  
Author(s):  
Asma Khalid ◽  
Lu Peng ◽  
Azim Arman ◽  
Stephen C. Warren-Smith ◽  
Erik P. Schartner ◽  
...  

2014 ◽  
Author(s):  
Sascha Liehr ◽  
Nils Nöther ◽  
Milan Steffen ◽  
Oriol Gili ◽  
Katerina Krebber

Sensors ◽  
2019 ◽  
Vol 19 (3) ◽  
pp. 683 ◽  
Author(s):  
Pedro Rivero ◽  
Javier Goicoechea ◽  
Francisco Arregui

The ability to tune the composition of nanostructured thin films is a hot topic for the design of functional coatings with advanced properties for sensing applications. The control of the structure at the nanoscale level enables an improvement of intrinsic properties (optical, chemical or physical) in comparison with the traditional bulk materials. In this sense, among all the known nanofabrication techniques, the layer-by-layer (LbL) nano-assembly method is a flexible, easily-scalable and versatile approach which makes possible precise control of the coating thickness, composition and structure. The development of sensitive nanocoatings has shown an exceptional growth in optical fiber sensing applications due to their self-assembling ability with oppositely charged components in order to obtain a multilayer structure. This nanoassembly technique is a powerful tool for the incorporation of a wide variety of species (polyelectrolytes, metal/metal oxide nanoparticles, hybrid particles, luminescent materials, dyes or biomolecules) in the resultant multilayer structure for the design of high-performance optical fiber sensors. In this work we present a review of applications related to optical fiber sensors based on advanced LbL coatings in two related research areas of great interest for the scientific community, namely chemical sensing (pH, gases and volatile organic compounds detection) as well as biological/biochemical sensing (proteins, immunoglobulins, antibodies or DNA detection).


2011 ◽  
Author(s):  
Chris D. Rouse ◽  
Anthony W. Brown ◽  
Michael T. V. Wylie ◽  
Bruce G. Colpitts

2012 ◽  
Vol 39 (7) ◽  
pp. 0705001
Author(s):  
彭交波 Peng Jiaobo ◽  
卞正兰 Bian Zhenglan ◽  
郝蕴琦 Hao Yunqi ◽  
陈迪俊 Chen Dijun ◽  
叶青 Ye Qing ◽  
...  

2020 ◽  
Vol 307 ◽  
pp. 70-77
Author(s):  
Affa Rozana Abdul Rashid ◽  
A.N.A. Latiff ◽  
Wan Maisarah Mukhtar ◽  
Nur Athirah Mohd Taib ◽  
Syahida Suhaimi ◽  
...  

Plastic optical fiber sensing that coated with ZnO is developed and its interaction with ethanol and methanol solution is investigated. ZnO is synthesized sonochemically by using the bath type sonicator. The optical properties such as transmittance, absorbance and refractive index of ZnO is determined by using ultraviolet-visible (UV-Vis) spectrophotometer. Then, the cladding of plastic optical fiber (POF) is etched by using acetone solution, sand paper and deionized water. The unclad region is coated with ZnO and being immersed in the solution of ethanol and methanol in the range from 0 v/v% to 50 v/v%. The performance of ZnO coated POF is achieved by obtaining the power output value that transmitted via power meter. The result of this research is as the alcohol concentration increase, the power output value increase. Refractive index of ZnO is varied due to interaction between modified-cladding area and alcohol. Besides that, more light propagates inside the fiber when the sensor is tested under methanol solution compare to ethanol. Thus, the power output ratio increments as well as the sensor efficiency and shows the effectiveness of POF sensor to detect varied alcohol concentration.


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