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通过层层纳米组装将金纳米粒子修饰到多孔硅上,用于干涉和混合光子/等离子体(生物)传感。

Decoration of Porous Silicon with Gold Nanoparticles via Layer-by-Layer Nanoassembly for Interferometric and Hybrid Photonic/Plasmonic (Bio)sensing.

机构信息

Dipartimento di Ingegneria dell'Informazione , Università di Pisa , Via G. Caruso 16 , 56122 Pisa , Italy.

Surflay Nanotec GmbH , Max-Planck-Straße 3 , 12489 Berlin , Germany.

出版信息

ACS Appl Mater Interfaces. 2019 Nov 20;11(46):43731-43740. doi: 10.1021/acsami.9b15737. Epub 2019 Nov 8.


DOI:10.1021/acsami.9b15737
PMID:31644268
Abstract

Gold nanoparticle layers (AuNPLs) enable the coupling of morphological, optical, and electrical properties of gold nanoparticles (AuNPs) with tailored and specific surface topography, making them exploitable in many bioapplications (e.g., biosensing, drug delivery, and photothermal therapy). Herein, we report the formation of AuNPLs on porous silicon (PSi) interferometers and distributed Bragg reflectors (DBRs) for (bio)sensing applications via layer-by-layer (LbL) nanoassembling of a positively charged polyelectrolyte, namely, poly(allylamine hydrochloride) (PAH), and negatively charged citrate-capped AuNPs. Decoration of PSi interferometers with AuNPLs enhances the Fabry-Pérot fringe contrast due to increased surface reflectivity, resulting in an augmented sensitivity for both bulk and surface refractive index sensing, namely, about 4.5-fold using NaCl aqueous solutions to infiltrate the pores and 2.6-fold for unspecific bovine serum albumin (BSA) adsorption on the pore surface, respectively. Sensitivity enhancing, about 2.5-fold, is also confirmed for affinity and selective biosensing of streptavidin using a biotinylated polymer, namely, negatively charged poly(methacrylic acid) (b-PMAA). Further, decoration of PSi DBR with AuNPLs envisages building up a hybrid photonic/plasmonic optical sensing platform. Both photonic (DBR stop-band) and plasmonic (localized surface plasmon resonance, LSPR) peaks of the hybrid structure are sensitive to changes of bulk (using glucose aqueous solutions) and surface (due to BSA unspecific adsorption) refractive index. To the best of our knowledge, this is the first report about the formation of AuNPLs via LbL nanoassembly on PSi for (i) the enhancing of the interferometric performance in (bio)sensing applications and (ii) the building up of hybrid photonic/plasmonic platforms for sensing and perspective biosensing applications.

摘要

金纳米颗粒层 (AuNPLs) 使金纳米颗粒 (AuNPs) 的形态、光学和电学性质与定制的特定表面形貌相结合,从而使它们能够在许多生物应用中得到利用(例如生物传感、药物输送和光热治疗)。在此,我们通过层层 (LbL) 纳米组装带正电荷的聚电解质,即盐酸聚烯丙胺 (PAH),以及带负电荷的柠檬酸封端的 AuNPs,在多孔硅 (PSi) 干涉仪和分布式布拉格反射器 (DBR) 上形成 AuNPLs,用于生物传感应用。AuNPLs 修饰 PSi 干涉仪会因表面反射率增加而增强 Fabry-Pérot 条纹对比度,从而提高体折射率和表面折射率传感的灵敏度,分别使用 NaCl 水溶液渗透孔和在孔表面非特异性吸附牛血清白蛋白 (BSA) 时提高约 4.5 倍和 2.6 倍。使用带负电荷的聚 (甲基丙烯酸) (b-PMAA) 等生物亲和性聚合物,对生物素化聚合物进行亲和和选择性生物传感时,也证实了灵敏度提高了约 2.5 倍。此外,AuNPLs 修饰 PSi DBR 可以构建混合光子/等离子体光学传感平台。该混合结构的光子(DBR 截止带)和等离子体(局域表面等离子体共振,LSPR)峰都对体(使用葡萄糖水溶液)和表面(由于 BSA 非特异性吸附)折射率的变化敏感。据我们所知,这是首次报道通过 LbL 纳米组装在 PSi 上形成 AuNPLs,用于(i)增强生物传感应用中的干涉性能,以及(ii)构建混合光子/等离子体平台用于传感和潜在的生物传感应用。

相似文献

[1]
Decoration of Porous Silicon with Gold Nanoparticles via Layer-by-Layer Nanoassembly for Interferometric and Hybrid Photonic/Plasmonic (Bio)sensing.

ACS Appl Mater Interfaces. 2019-11-8

[2]
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ACS Sens. 2018-1-23

[3]
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Opt Express. 2013-12-30

[4]
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J Nanosci Nanotechnol. 2007-11

[5]
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Anal Chim Acta. 2023-8-29

[6]
A Mass-Producible and Versatile Sensing System: Localized Surface Plasmon Resonance Excited by Individual Waveguide Modes.

ACS Sens. 2018-1-24

[7]
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J Nanosci Nanotechnol. 2012-5

[8]
Layer-by-layer biofunctionalization of nanostructured porous silicon for high-sensitivity and high-selectivity label-free affinity biosensing.

Nat Commun. 2018-12-10

[9]
An interference localized surface plasmon resonance biosensor based on the photonic structure of Au nanoparticles and SiO2/Si multilayers.

ACS Nano. 2009-2-24

[10]
Porous Silicon Bragg Reflector and 2D Gold-Polymer Nanograting: A Route Towards a Hybrid Optoplasmonic Platform.

Nanomaterials (Basel). 2019-7-16

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[2]
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[3]
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ACS Appl Mater Interfaces. 2025-2-26

[4]
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[5]
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[6]
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[7]
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[9]
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