Realization of sucrose sensor using photonic waveguide: An application to biophotonics

A. Panda, Pukhrambam Puspa Devi, G. Keiser
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引用次数: 4

Abstract

A photonic waveguide sensor is explored in the present paper for effective sensing of sucrose concentration in an aqueous solution at a wavelength of 1550 nm by employing a 1-D photonic waveguide structure. The proposed structure comprises three layers, out of which odd layers are considered to be an InAs compound semiconductor having thickness of 700nm each whereas an even layer is air having thickness of 300 nm. Additionally, the effect of concentration variation of sucrose is theoretically examined with reference to reflected intensity, diffraction loss and transmitted intensity at the aforementioned waveguide. Reflected intensity from the said structure is computed through band gap analysis by a manipulating finite difference time domain (FDTD) technique, whereas diffraction loss and transmitted intensity are computed through numerical formulations. Further, simulation for diffraction loss with respect to different sucrose concentration has been carried out and interestingly the upshots revealed logarithmic deviation of diffraction efficiency with reference to variation in sucrose concentration from 10 gm/100ml to 70 gm/100ml. Apart from this, it is also revealed that there exists noteworthy shifts in both reflected as well as transmitted intensity with rise in sucrose concentration. Additionally, it is affirmed that both reflected light intensity and transmitted light intensity can be nicely fitted with a precise linear relationship having R2=0.998 and R2=0.9919 respectively, which claim an accurate sensing of sucrose concentration by using the proposed semiconductor based photonic waveguide and find applications in biophotonics.
利用光子波导实现蔗糖传感器:在生物光子学中的应用
本文研究了一种利用一维光子波导结构对1550nm波长的水溶液中蔗糖浓度进行有效传感的光子波导传感器。所提出的结构包括三层,其中奇数层被认为是每层厚度为700nm的InAs化合物半导体,而偶数层是厚度为300nm的空气。另外,从理论上考察了蔗糖浓度变化对波导反射强度、衍射损耗和透射强度的影响。该结构的反射强度通过带隙分析通过操纵时域有限差分(FDTD)技术计算,而衍射损耗和透射强度通过数值公式计算。此外,对不同蔗糖浓度下的衍射损失进行了模拟,有趣的是,结果显示了蔗糖浓度从10 gm/100ml到70 gm/100ml变化时衍射效率的对数偏差。此外,还发现随着蔗糖浓度的升高,反射强度和透射强度都有明显的变化。此外,还证实了反射光强和透射光强都可以很好地拟合成精确的线性关系,R2=0.998, R2=0.9919,这表明该半导体光子波导可以准确地感知蔗糖浓度,并在生物光子学中得到应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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