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Refractive Index-Based Detection of Gradient Elution Liquid Chromatography using Chip-Integrated Microring Resonator Arrays

机译:芯片集成微环谐振器阵列基于折射率的梯度洗脱液相色谱检测

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摘要

Refractive index-based sensors offer attractive characteristics as non-destructive and universal detectors for liquid chromatographic separations, but a small dynamic range and sensitivity to minor thermal perturbations limit the utility of commercial RI detectors for many potential applications, especially those requiring the use of gradient elutions. As such, RI detectors find use almost exclusively in sample abundant, isocratic separations when interfaced with HPLC. Silicon photonic microring resonators are refractive index-sensitive optical devices that feature good sensitivity and tremendous dynamic range. The large dynamic range of microring resonators allows the sensors to function across a wide spectrum of refractive indices, such as that encountered when moving from an aqueous to organic mobile phase during a gradient elution – a key analytical advantage not supported in commercial RI detectors. Microrings are easily configured into sensor arrays, and chip-integrated control microrings enable real-time corrections of thermal drift. Thermal controls allow for analyses at any temperature and in the absence of rigorous temperature control, obviating extended detector equilibration wait times. Herein, proof of concept isocratic and gradient elution separations were performed using well characterized model analytes (e.g., caffeine, ibuprofen) in both neat buffer and more complex sample matrices. These experiments demonstrate the ability of microring arrays to perform isocratic and gradient elutions under ambient conditions, avoiding two major limitations of commercial RI-based detectors and maintaining comparable bulk RI sensitivity. Further benefit may be realized in the future through selective surface functionalization to impart degrees of post-column (bio)molecular specificity at the detection phase of a separation. The chip-based and microscale nature of microring resonators also makes it an attractive potential detection technology that could be integrated within lab-on-a-chip and microfluidic separation devices.
机译:基于折射率的传感器提供了作为液相色谱分离用非破坏性和通用检测器的诱人特性,但是动态范围小和对微小热扰动的灵敏度限制了商业RI检测器在许多潜在应用中的实用性,尤其是那些需要使用梯度的应用洗脱。因此,当与HPLC连接时,RI检测器几乎只能用于样品丰富的等度分离中。硅光子微环谐振器是折射率敏感的光学器件,具有良好的灵敏度和巨大的动态范围。微环谐振器的动态范围大,可在宽范围的折射率上发挥作用,例如在梯度洗脱过程中从水性流动相变为有机流动相时遇到的折射率–这是商业RI检测器不支持的关键分析优势。微环很容易配置到传感器阵列中,而芯片集成的控制微环可实现热漂移的实时校正。热控制允许在任何温度下进行分析,并且没有严格的温度控制,从而避免了延长的检测器平衡等待时间。本文中,在纯缓冲液和更复杂的样品基质中,使用特征充分的模型分析物(例如,咖啡因,布洛芬)进行概念上的等度和梯度洗脱分离。这些实验证明了微环阵列在环境条件下进行等度和梯度洗脱的能力,避免了商业基于RI的检测器的两个主要限制,并保持了相当的整体RI灵敏度。将来可以通过选择性表面官能化在分离的检测阶段赋予柱后(生物)分子特异性的程度来实现进一步的收益。微环谐振器基于芯片的微观性质也使其成为一种诱人的电势检测技术,可以集成在芯片实验室和微流体分离设备中。

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