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Biosensing via light scattering from plasmonic core-shell nanospheres coated with DNA molecules

机译:通过被DNA分子包裹的等离激元核壳纳米球的光散射进行生物传感

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摘要

We present both experimental and theoretical studies for investigating DNA molecules attached on metallic nanospheres. We have developed an efficient and accurate numerical method to investigate light scattering from plasmonic nanospheres on a substrate covered by a shell, based on the Green's function approach with suitable spherical harmonic basis. Next, we use this method to study optical scattering from DNA molecules attached to metallic nanoparticles placed on a substrate and compare with experimental results. We obtain fairly good agreement between theoretical predictions and the measured ellipsometric spectra. The metallic nanoparticles were used to detect the binding with DNA molecules in a microfluidic setup via spectroscopic ellipsometry (SE), and a detectable change in ellipsometric spectra was found when DNA molecules are captured on Au nanoparticles. Our theoretical simulation indicates that the coverage of Au nanosphere by a submonolayer of DNA molecules, which is modeled by a thin layer of dielectric material (which may absorb light), can lead to a small but detectable spectroscopic shift in both the Ψ and Δ spectra with more significant change in Δ spectra in agreement with experimental results. Our studies demonstrated the ultrasensitive capability of SE for sensing submonolayer coverage of DNA molecules on Au nanospheres. Hence the spectroscopic ellipsometric measurements coupled with theoretical analysis via an efficient computation method can be an effective tool for detecting DNA molecules attached on Au nanoparticles, thus achieving label-free, non-destructive, and high-sensitivity biosensing with nanoscale resolution.
机译:我们目前进行实验和理论研究,以研究附着在金属纳米球上的DNA分子。我们已经开发了一种有效且准确的数值方法,以格林函数函数和合适的球谐基础为基础,研究了等离子体纳米球在被壳覆盖的基底上的光散射。接下来,我们使用这种方法研究附着在金属纳米颗粒上的DNA分子的光散射,并将其与实验结果进行比较。我们在理论预测和实测椭偏光谱之间获得了相当好的一致性。金属纳米颗粒用于通过光谱椭偏仪(SE)在微流体装置中检测与DNA分子的结合,并且当DNA分子被捕获在Au纳米颗粒上时,椭偏光谱可检测到变化。我们的理论模拟表明,DNA分子的亚单分子层覆盖了Au纳米球,这是由一层薄薄的介电材料(可以吸收光)模拟的,可以导致spectra和Δ光谱发生微小但可检测的光谱偏移与实验结果相符的Δ光谱变化更显着。我们的研究表明,SE具有超灵敏的功能,可感应Au纳米球上DNA分子的亚单层覆盖。因此,光谱椭偏测量与通过有效计算方法进行的理论分析相结合,可以成为检测附着在金纳米颗粒上的DNA分子的有效工具,从而实现具有纳米级分辨率的无标记,无损和高灵敏度的生物传感。

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  • 会议地点 Anaheim(US)
  • 作者单位

    Research Center for Applied Sciences, Academia Sinica, 128 Academia Road, Sec. 2, Taipei 11529, Taiwan;

    Research Center for Applied Sciences, Academia Sinica, 128 Academia Road, Sec. 2, Taipei 11529, Taiwan;

    Research Center for Applied Sciences, Academia Sinica, 128 Academia Road, Sec. 2, Taipei 11529, Taiwan,Department of Physics, National Cheng Kung University, Tainan, 701 Taiwan;

    Research Center for Applied Sciences, Academia Sinica, 128 Academia Road, Sec. 2, Taipei 11529, Taiwan,Department of Applied Physics, Indian School of Mines, Dhanbad - 826004, Jharkhand, India;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Scattering theory; Ellipsometry and polarimetry; Biological sensing and sensors;

    机译:散射理论;椭圆偏振法和极化法;生物传感和传感器;

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