Bandyopadhyay Sankhyabrata, Biswas Palas, Chiavaioli Francesco, Dey Tanoy Kumar, Basumallick Nandini, Trono Cosimo, Giannetti Ambra, Tombelli Sara, Baldini Francesco, Bandyopadhyay Somnath
Appl Opt. 2017 Dec 10;56(35):9846-9853. doi: 10.1364/AO.56.009846.
In this paper, a detailed investigation on the modeling of long-period fiber grating (LPFG) sensors is discussed with the aim of providing a more realistic solution for their use in biosensing. Add-layer sensitivity, i.e., sensitivity of the sensor to an additional layer adhered onto the fiber surface, is quantified and a clear and complete analysis about the influence of the average thickness of the deposited biological sensing layers, as well as the change in refractive index of these layers, on the resonant wavelength of the cladding modes of an LPFG is provided. Add-layer sensitivity of LPFG sensors close to mode transition (MT) and also at turn-around point (TAP) are taken into account. Adsorbed layer thicknesses, as estimated from measured wavelength shifts of the LPFG, are found to have a good match with the values obtained through other measurement techniques.
本文讨论了对长周期光纤光栅(LPFG)传感器建模的详细研究,旨在为其在生物传感中的应用提供更实际的解决方案。量化了附加层灵敏度,即传感器对附着在光纤表面的附加层的灵敏度,并对沉积的生物传感层的平均厚度以及这些层的折射率变化对LPFG包层模式谐振波长的影响进行了清晰完整的分析。考虑了接近模式转换(MT)以及转折点(TAP)的LPFG传感器的附加层灵敏度。根据LPFG测量的波长偏移估计的吸附层厚度与通过其他测量技术获得的值匹配良好。