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涂覆聚甲基丙烯酸甲酯用于生物传感的混合硅-二氧化碲分布式布拉格反射器谐振器

Hybrid silicon-tellurium-dioxide DBR resonators coated in PMMA for biological sensing.

作者信息

Bonneville Dawson B, Albert Mitchell, Arbi Ramis, Munir Muhammad, Segat Frare Bruno L, Miarabbas Kiani Khadijeh, Frankis Henry C, Knights Andrew P, Turak Ayse, Sask Kyla N, Bradley Jonathan D B

机构信息

Department of Engineering Physics, McMaster University, 1280 Main Street West, Hamilton, ON L8S 4L7, Canada.

Department of Materials Science and Engineering, McMaster University, 1280 Main Street West, Hamilton, ON L8S 4L7, Canada.

出版信息

Biomed Opt Express. 2023 Mar 17;14(4):1545-1561. doi: 10.1364/BOE.485824. eCollection 2023 Apr 1.

Abstract

We report on silicon waveguide distributed Bragg reflector (DBR) cavities hybridized with a tellurium dioxide (TeO) cladding and coated in plasma functionalized poly (methyl methacrylate) (PMMA) for label free biological sensors. We describe the device structure and fabrication steps, including reactive sputtering of TeO and spin coating and plasma functionalization of PMMA on foundry processed Si chips, as well as the characterization of two DBR designs via thermal, water, and bovine serum albumin (BSA) protein sensing. Plasma treatment on the PMMA films was shown to decrease the water droplet contact angle from ∼70 to ∼35°, increasing hydrophilicity for liquid sensing, while adding functional groups on the surface of the sensors intended to assist with immobilization of BSA molecules. Thermal, water and protein sensing were demonstrated on two DBR designs, including waveguide-connected sidewall (SW) and waveguide-adjacent multi-piece (MP) gratings. Limits of detection of 60 and 300 × 10 RIU were measured via water sensing, and thermal sensitivities of 0.11 and 0.13 nm/°C were measured from 25-50 °C for SW and MP DBR cavities, respectively. Plasma treatment was shown to enable protein immobilization and sensing of BSA molecules at a concentration of 2 µg/mL diluted in phosphate buffered saline, demonstrating a ∼1.6 nm resonance shift and subsequent full recovery to baseline after stripping the proteins with sodium dodecyl sulfate for a MP DBR device. These results are a promising step towards active and laser-based sensors using rare-earth-doped TeO in silicon photonic circuits, which can be subsequently coated in PMMA and functionalized via plasma treatment for label free biological sensing.

摘要

我们报道了用于无标记生物传感器的、与二氧化碲(TeO)包层杂交并涂覆有等离子体功能化聚甲基丙烯酸甲酯(PMMA)的硅波导分布式布拉格反射器(DBR)腔。我们描述了器件结构和制造步骤,包括在代工处理的硅芯片上进行TeO的反应溅射、PMMA的旋涂和等离子体功能化,以及通过热、水和牛血清白蛋白(BSA)蛋白传感对两种DBR设计进行表征。结果表明,对PMMA薄膜进行等离子体处理可使水滴接触角从约70°降至约35°,增加液体传感的亲水性,同时在传感器表面添加官能团以辅助BSA分子的固定。在两种DBR设计上展示了热、水和蛋白质传感,包括波导连接的侧壁(SW)和波导相邻的多片(MP)光栅。通过水传感测得的检测限为60和300×10 RIU,对于SW和MP DBR腔,在25至50°C范围内测得的热灵敏度分别为0.11和0.13 nm/°C。结果表明,等离子体处理能够实现蛋白质固定,并对在磷酸盐缓冲盐水中稀释至浓度为2 µg/mL的BSA分子进行传感,对于MP DBR器件,在用十二烷基硫酸钠去除蛋白质后,共振位移约为1.6 nm,随后完全恢复到基线。这些结果朝着在硅光子电路中使用稀土掺杂TeO的有源和基于激光的传感器迈出了有希望的一步,随后可以在其上涂覆PMMA并通过等离子体处理进行功能化以实现无标记生物传感。

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