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Accurate simulations of reflective wavelength spectrum of surface-bonded fiber Bragg grating

机译:表面键合光纤布拉格光栅反射波长光谱的精确模拟

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摘要

For a fiber Bragg grating (FBG) surface-bonded to a substrate subjected to tension, the FBG reflective wavelength spectrum measured using an optical spectrum analyzer is different in either the location of the center wavelength or the spectral shape from that calculated using the transfer matrix (T-matrix) method. We show that the difference in the two wavelength spectra is caused by the adhesive layer used to bond the FBG to the substrate and a birefringence effect within the strained FBG. In the former case, the adhesive reduces the strain transferred from the substrate to the FBG and, therefore, causes the T-matrix method to overestimate the shift in the center wavelength. In the latter case, a birefringence effect is induced within the FBG because only the lower part of the FBG is bonded to the stressed substrate. As a result, both the peak power and the full width at half-maximum of the experimental spectrum differ from that predicted by the T-matrix method, in which the effects of birefringence are ignored. However, it is shown that when the strain transmission loss and birefringence effect are compensated using a strain transmission correction factor and a modified T-matrix formulation based on a discretized value of the refractive index, respectively, a good agreement is obtained between the calculated spectrum and that measured experimentally.
机译:对于表面粘合到承受张力的基板的光纤布拉格光栅(FBG),使用光谱分析仪测得的FBG反射波长光谱的中心波长位置或光谱形状与使用转移矩阵计算出的不同(T-矩阵)方法。我们表明,两个波长光谱的差异是由用于将FBG粘合到基板的粘合剂层和应变FBG内的双折射效应引起的。在前一种情况下,粘合剂会减小从基板传递到FBG的应变,因此,导致T矩阵方法高估了中心波长的偏移。在后一种情况下,由于只有FBG的下部结合到受应力的基板上,因此在FBG内会引起双折射效应。结果,实验光谱的峰值功率和半峰全宽都不同于通过T矩阵法预测的值,在该方法中,双折射的影响被忽略了。然而,表明当分别使用应变传递校正因子和基于折射率的离散值的改进的T矩阵公式来补偿应变传递损耗和双折射效应时,在计算的光谱之间获得了良好的一致性。并通过实验进行了测量。

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