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Computational study on high sensitive silicon based two dimensional photonic crystal waveguide with circular holes for biochemical sensing

机译:基于高敏硅的二维光子晶体波导与生物化学传感的圆孔计算研究

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A study has been made using finite difference time domain (FDTD) method to investigate the performance of silicon (Si) based two-dimensional (2-D) photonic crystal waveguide (PCW) for biochemical sensing. Circular type of PCW has been analyzed by removing a single row of holes from a 2-D Si photonic crystal (PC) slab. Sensors contained hexagonal lattice with particular geometric configurations trapped different amount of biomolecules e.g. DNA. The transmission spectrums of the sensor with different cover refractive indices are calculated. The calculation results show that a change in cover refractive index (RI) is apparent. A shift in light wavelength is found at the output end of the sensor which is monitored to evaluate sensing performance. The sensing scheme is based on monitoring the wavelength shifts resulting from the attachment of DNA molecules to the sensor holes. The diameter of the circular holes localized at each side of the line defect was optimized to realize high sensitivity, wide measurement range and improved transmission. Approximately 18% improvement in sensitivity has been found for circular holes than that of elliptical holes.
机译:已经使用有限差分时域(FDTD)方法进行了研究,以研究基于硅(Si)的二维(2-D)光子晶体波导(PCW)的生物化学感测的性能。通过从2-D Si光子晶体(PC)板坯中移除单行孔来分析圆形类型的PCW。传感器包含具有特定几何配置的六边形格子被捕获不同量的生物分子。脱氧核糖核酸。计算具有不同覆盖折射率的传感器的传输谱。计算结果表明,覆盖折射率(RI)的变化是显而易见的。在传感器的输出端发现光波长的偏移,该输出端被监视以评估感测性能。感测方案基于监测由DNA分子的附着到传感器孔产生的波长移位。优化了线缺陷的每一侧定位的圆孔的直径,以实现高灵敏度,宽测量范围和改进的传输。已经发现了比椭圆形孔的圆孔的敏感性提高约18%。

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