生物分子检测用二氧化硅微球。

A Demir, A Serpengüzel
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引用次数: 8

摘要

微球生物传感器因其高灵敏度、高选择性和高可实现性而受到光子学领域的广泛关注。微球具有高质量因子(q因子)形态依赖共振,对折射率和尺寸变化非常敏感。微球形态依赖共振的扰动可用于生物分子的检测。不同生物分子在微球表面的吸附会引起有效尺寸和折射率的变化,从而导致共振波长的移位。基于这种现象的生物传感器可以根据需要设计和优化的配置灵敏地检测单个分子。二氧化硅的折射率为1.5,非常接近双分子介质的折射率,是一种适合用于生物传感的光子材料。计算了在1.55微米处90度和0度处的横向电和横向磁弹性散射谱,并计算了在其上加层后的相关位移。用90度散射监测散射信号,用0度散射监测发射信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Silica microspheres for biomolecular detection applications.

Microsphere-based biosensors have been attracting the attention of the photonics community due to their high sensitivity, selectivity and implementation. Microspheres, with their high quality-factor (Q-factor) morphology dependent resonances, are very sensitive to refractive index and size changes. The perturbation of the microsphere morphology dependent resonances can be used for the detection of biomolecules. Adsorption of different biomolecules on the surface of microspheres causes a change of effective size and refractive index leading to the shift of resonance wavelengths. A biosensor, based on this phenomenon, can detect a single molecule sensitively depending on the configuration that needs to be designed and optimised. Silica with a refractive index of 1.5, which is very close to that of bimolecular agents, is a suitable photonic material to use for biosensing applications. The transverse electric and transverse magnetic elastic scattering spectra at 90 degrees and 0 degrees are calculated at 1.55 microm with the associated shifts after adding a layer on it. 90 degrees scattering is used to monitor the scattered signal, whereas 0 degrees scattering is used to monitor the transmission signal.

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