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首页> 外文期刊>ACS nano >Unravelling the Role of Electric and Magnetic Dipoles in Biosensing with Si Nanoresonators
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Unravelling the Role of Electric and Magnetic Dipoles in Biosensing with Si Nanoresonators

机译:揭开电磁偶极子在Si Nanoralators生物传感中的作用

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摘要

High refractive index dielectric nanoresonators are attracting much attention due to their ability to control both electric and magnetic components of light. Due to the combination of confined modes with reduced absorption losses, they have recently been proposed as an alternative to nanoplasmonic biosensors. In this context, we study the use of semirandom silicon nanocylinder arrays, fabricated with simple and scalable colloidal lithography for the efficient and reliable detection of biomolecules in biological samples. Interestingly, electric and magnetic dipole resonances are associated with two different transduction mechanisms: extinction decrease and resonance red shift. By contrasting both observables, we identify clear advantages in tracking changes in the extinction magnitude. Our data demonstrate that, despite its simplicity, the proposed platform is able to detect prostate-specific antigen in human serum with limits of detection meeting clinical needs.
机译:由于它们控制光的电气和磁性部件的能力,高折射率介电纳米管引起了很多关注。 由于具有减少吸收损失的狭窄模式的组合,最近已经提出了纳米升性生物传感器的替代方案。 在这种情况下,我们研究了用简单且可伸缩的胶体光刻制造的MEARANANOM纳米锗晶片阵列的使用,用于生物样品中的生物分子的有效和可靠地检测。 有趣的是,电和磁性偶极子谐振与两种不同的转导机构相关:消失减少和共振红移。 通过对比这两个可观察来形成对比,我们在跟踪消光幅度的变化时确定明显的优点。 我们的数据表明,尽管其简单性,所提出的平台能够检测人类血清中的前列腺特异性抗原,并具有临床需求的限制。

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