Wide spectral-range imaging spectroscopy of photonic crystal microbeads for multiplex biomolecular assay applications

Jianping Li
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Abstract

Suspension assay using optically color-encoded microbeads is a novel way to increase the reaction speed and multiplex of biomolecular detection and analysis. To boost the detection speed, a hyperspectral imaging (HSI) system is of great interest for quickly decoding the color codes of the microcarriers. Imaging Fourier transform spectrometer (IFTS) is a potential candidate for this task due to its advantages in HSI measurement. However, conventional IFTS is only popular in IR spectral bands because it is easier to track its scanning mirror position in longer wavelengths so that the fundamental Nyquist criterion can be satisfied when sampling the interferograms; the sampling mechanism for shorter wavelengths IFTS used to be very sophisticated, high-cost and bulky. In order to overcome this handicap and take better usage of its advantages for HSI applications, a new wide spectral range IFTS platform is proposed based on an optical beam-folding position-tracking technique. This simple technique has successfully extended the spectral range of an IFTS to cover 350-1000nm. Test results prove that the system has achieved good spectral and spatial resolving performances with instrumentation flexibilities. Accurate and fast measurement results on novel colloidal photonic crystal microbeads also demonstrate its practical potential for high-throughput and multiplex suspension molecular assays.
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光子晶体微珠的宽光谱范围成像光谱用于多种生物分子分析应用
光学彩色编码微珠悬浮法是提高生物分子检测分析反应速度和多样性的一种新方法。为了提高检测速度,高光谱成像(HSI)系统可以快速解码微载体的颜色编码。成像傅里叶变换光谱仪(IFTS)由于其在HSI测量方面的优势而成为这项任务的潜在候选者。然而,传统的IFTS仅在红外光谱波段流行,因为在较长的波长内更容易跟踪其扫描镜的位置,从而在对干涉图进行采样时可以满足基本的奈奎斯特准则;过去,短波IFTS的采样机制非常复杂,成本高,体积大。为了克服这一缺陷,更好地发挥其优势,提出了一种基于光束折叠位置跟踪技术的宽光谱范围IFTS平台。这种简单的技术已经成功地将IFTS的光谱范围扩展到350-1000nm。测试结果表明,该系统具有良好的光谱和空间分辨性能,具有仪器的灵活性。新型胶体光子晶体微珠的准确、快速测量结果也证明了其在高通量和多重悬浮液分子分析中的应用潜力。
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