MacHugh Emma, Antony Graceson, Mallik Arun Kumar, Kaworek Alicja, McCormack Declan, Duffy Brendan, Oubaha Mohamed
School of Chemical and Pharmaceutical Sciences, Technological University Dublin, City Campus Grangegorman, D07 H6K8 Dublin, Ireland.
Centre for Research in Engineering Surface Technology (CREST), FOCAS Institute, Technological University Dublin, 13 Camden Row, D02 HW71 Dublin, Ireland.
Nanomaterials (Basel). 2022 Nov 25;12(23):4192. doi: 10.3390/nano12234192.
This work outlines, for the first time, the fabrication of a whole hybrid sol-gel optofluidic platform by integrating a microfluidic biosensor platform with optical waveguides employing a standard photolithography process. To demonstrate the suitability of this new hybrid sol-gel optofluidic platform, optical and bio-sensing proof-of-concepts are proposed. A photoreactive hybrid sol-gel material composed of a photopolymerisable organically modified silicon alkoxide and a transition metal complex was prepared and used as the fabrication material for the entire optofluidic platform, including the optical waveguides, the sensing areas, and the microfluidic device. The most suitable sol-gel materials chosen for the fabrication of the cladding and core of the waveguides showed a RIC of 3.5 × 10 and gave thicknesses between 5.5 and 7 μm. The material was optimised to simultaneously meet the photoreactive properties required for the photolithography fabrication process and the optical properties needed for the effective optical operability of the microstructured waveguides at 532 and 633 nm with an integrated microfluidic device. The optical proof-of-concept was performed using a fluorescent dye (Atto 633) and recording its optical responses while irradiated with a suitable optical excitation. The biosensing capability of the platform was assessed using a polyclonal primary IgG mouse antibody and a fluorescent labelled secondary IgG anti-mouse antibody. A limit of detection (LOD) of 50 ug/mL was achieved. A correlation between the concentration of the dye and the emission fluorescence was evidenced, thus clearly demonstrating the feasibility of the proposed hybrid sol-gel optofluidic platform concept. The successful integration and operability of optical and microfluidic components in the same optofluidic platform is a novel concept, particularly where the sol-gel fabrication material is concerned.
这项工作首次概述了通过采用标准光刻工艺将微流控生物传感器平台与光波导集成,来制造一个完整的混合溶胶 - 凝胶光流体平台。为了证明这种新型混合溶胶 - 凝胶光流体平台的适用性,提出了光学和生物传感概念验证。制备了一种由可光聚合的有机改性硅醇盐和过渡金属配合物组成的光反应性混合溶胶 - 凝胶材料,并将其用作整个光流体平台的制造材料,包括光波导、传感区域和微流控装置。为制造波导包层和纤芯所选择的最合适的溶胶 - 凝胶材料显示出3.5×10的相对折射率差(RIC),厚度在5.5至7μm之间。对该材料进行了优化,以同时满足光刻制造工艺所需的光反应特性以及与集成微流控装置在532和633nm下有效光学操作所需的光学特性。使用荧光染料(Atto 633)进行光学概念验证,并在合适的光激发照射下记录其光学响应。使用多克隆一级IgG小鼠抗体和荧光标记的二级IgG抗小鼠抗体评估该平台的生物传感能力。实现了50μg/mL的检测限(LOD)。证明了染料浓度与发射荧光之间的相关性,从而清楚地证明了所提出的混合溶胶 - 凝胶光流体平台概念的可行性。在同一光流体平台中成功集成光学和微流控组件并使其可操作是一个新颖的概念,特别是在涉及溶胶 - 凝胶制造材料的情况下。