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使用飞秒光流体波导检测 SARS-CoV-2 DNA 靶标。

Detection of SARS-CoV-2 DNA Targets Using Femtoliter Optofluidic Waveguides.

机构信息

Department of Electrical and Computer Engineering, Texas A&M University, College Station 77843, Texas, United States.

Department of Materials Science and Engineering, Texas A&M University, College Station 77843, Texas, United States.

出版信息

Anal Chem. 2021 Mar 9;93(9):4154-4159. doi: 10.1021/acs.analchem.0c02971. Epub 2021 Mar 1.

Abstract

Chip-scale SARS-CoV-2 testing was demonstrated using silicon nitride (SiN) nanoslot fluidic waveguides to detect a tagged oligonucleotide with a coronavirus DNA sequence. The slot waveguides were fabricated using complementary metal-oxide-semiconductor (CMOS) fabrication processes, including multiscale lithography and selective reactive ion etching (RIE), forming femtoliter fluidic channels. Finite difference method (FDM) simulation was used to calculate the optical field distribution of the waveguide mode when the waveguide sensor was excited by transverse electric (TE) and transverse magnetic (TM) polarized light. For the TE polarization, a strong optical field was created in the slot region and its field intensity was 14× stronger than the evanescent sensing field from the TM polarization. The nanoscale confinement of the optical sensing field significantly enhanced the light-analyte interaction and improved the optical sensitivity. The sensitivity enhancement was experimentally demonstrated by measuring the polarization-dependent fluorescence emission from the tagged oligonucleotide. The photonic chips consisting of femtoliter SiN waveguides provide a low-cost and high throughput platform for real-time virus identification, which is critical for point-of-care (PoC) diagnostic applications.

摘要

采用氮化硅(SiN)纳米缝隙流导波来检测带有冠状病毒 DNA 序列的标记寡核苷酸,展示了片上规模的 SARS-CoV-2 检测。采用互补金属氧化物半导体(CMOS)制造工艺(包括多尺度光刻和选择性反应离子刻蚀(RIE))制造缝隙波导,形成飞升级别的流体通道。有限差分法(FDM)模拟用于计算当波导传感器由横电(TE)和横磁(TM)偏振光激发时,波导模式的光场分布。对于 TE 偏振,在缝隙区域中产生了很强的光场,其场强比 TM 偏振的消逝传感场强强 14 倍。光学传感场的纳米尺度限制显著增强了光-分析物相互作用,提高了光学灵敏度。通过测量标记寡核苷酸的偏振相关荧光发射,实验证明了灵敏度增强。由飞升级别的 SiN 波导组成的光子芯片为实时病毒识别提供了低成本、高通量的平台,这对于即时护理(PoC)诊断应用至关重要。

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