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首页> 外文期刊>Selected Topics in Quantum Electronics, IEEE Journal of >Optofluidic FRET Lasers and Their Applications in Novel Photonic Devices and Biochemical Sensing
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Optofluidic FRET Lasers and Their Applications in Novel Photonic Devices and Biochemical Sensing

机译:光流体FRET激光器及其在新型光子器件和生化传感中的应用

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摘要

Incorporating fluorescence resonance energy transfer (FRET) into a laser cavity can increase the sensitivity of FRET-based biochemical sensors due to the nonlinear dependence of the lasing output on the FRET parameters. Here, we carry out a comprehensive theoretical analysis of optofluidic FRET lasers based on a Fabry–Pérot microcavity using a rate equation model. We compare conceptually distinct cases of donor and acceptor molecules diffusing freely in a bulk solution versus molecules connected by a fixed-length linker and show that the latter arrangement is especially well suited for sensing of low-concentration analytes. By comparing FRET lasing-based sensors with conventional FRET sensors, we show that for optimal pump fluence and FRET-pair concentration, FRET lasing can lead to more than 100-fold enhancement in detection sensitivities of conformational changes in the Förster radius range. We also show that for optimal experimental conditions, donor and acceptor emission intensities become over 20-fold more sensitive to FRET-pair concentration changes in the presence of FRET lasing. We study the dependence of the sensitivity enhancement on the cavity Q-factor. We show that the highest enhancements can be obtained for Q-factors between , and enhancement values decrease for Q-factors above due to the radiative energy transfer in the cavity.
机译:由于激光输出对FRET参数的非线性依赖性,将荧光共振能量转移(FRET)合并到激光腔中可以提高基于FRET的生化传感器的灵敏度。在这里,我们使用速率方程模型对基于Fabry-Pérot微腔的光流体FRET激光器进行了全面的理论分析。我们比较了在本体溶液中自由扩散的供体和受体分子与通过固定长度接头连接的分子自由扩散的概念上不同的情况,并显示了后者的排列特别适合于检测低浓度的分析物。通过将基于FRET激光的传感器与常规FRET传感器进行比较,我们表明,对于最佳的泵注量和FRET对浓度,FRET激光可导致Förster半径范围内构象变化的检测灵敏度提高100倍以上。我们还表明,对于最佳实验条件,在存在FRET激光的情况下,供体和受体的发射强度对FRET对浓度变化的敏感性提高了20倍以上。我们研究了灵敏度增强对腔Q因子的依赖性。我们显示,对于Q因子之间的,可以获得最高的增强,而由于空腔中的辐射能量转移,上述Q因子的增强值减小。

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