生物医学用软材料上等离子体金纳米粒子的合成

IF 2.8 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Micro and Nano Engineering Pub Date : 2023-06-01 DOI:10.1016/j.mne.2023.100207
Federica Granata , Noemi Pirillo , Alessandro Alabastri , Andrea Schirato , Luigi Bruno , Roberta Costa , Natalia Malara , Valentina Onesto , Maria Laura Coluccio , Mario Iodice , Giuseppe Coppola , Francesco Gentile
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引用次数: 0

摘要

等离子体金属纳米材料通常由刚性基底支撑,通常由硅或玻璃制成。最近,人们对开发软等离子体器件越来越感兴趣。这样的装置重量轻、成本低、表现出更高的灵活性和改进的机械性能。此外,它们保持了传统纳米光学结构的特征,例如增强局部电磁场的能力。由于这些特性,它们有望在生物、医学和生物工程应用中成为高效的生物传感器。在这里,我们展示了软性聚二甲基硅氧烷(PDMS)等离子体器件的制备。使用包括化学沉积在内的多种技术,我们将PDMS薄膜与金纳米颗粒簇阵列图案化。所得器件显示出延伸数百微米的金纳米颗粒的规则图案,并且具有适度的亲水性,接触角约为80°。在纳米尺度上,样品的扫描电子和原子力显微镜显示平均粒径为~50纳米。数值模拟和实验证明,粒子的纳米尺寸及其在团簇中的随机分布促进了电磁场的增强。机械特性和应力-应变关系表明,该装置具有2.8MPa的刚度。在生物免疫测定测试中,该装置正确识别并检测了浓度为25μG/ml的溶液中的抗人免疫球蛋白G(IgG)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Synthesis of plasmonic gold nanoparticles on soft materials for biomedical applications

Plasmonic metal nanomaterials are usually supported by rigid substrates, typically made of silicon or glass. Recently, there has been growing interest in developing soft plasmonic devices. Such devices are low weight, low cost, exhibit elevated flexibility and improved mechanical properties. Moreover, they maintain the features of conventional nano-optic structures, such as the ability to enhance the local electromagnetic field. On account of these characteristics, they show promise as efficient biosensors in biological, medical, and bio-engineering applications. Here, we demonstrate the fabrication of soft polydimethylsiloxane (PDMS) plasmonic devices. Using a combination of techniques, including electroless deposition, we patterned thin membranes of PDMS with arrays of gold nanoparticle clusters. Resulting devices show regular patterns of gold nanoparticles extending over several hundreds of microns and are moderately hydrophilic, with a contact angle of about 80°. At the nanoscale, scanning electron and atomic force microscopy of samples reveal an average particle size of ∼50 nm. The nanoscopic size of the particles, along with their random distribution in a cluster, promotes the enhancement of electromagnetic fields, evidenced by numerical simulations and experiments. Mechanical characterization and the stress-strain relationship indicate that the device has a stiffness of 2.8 MPa. In biological immunoassay tests, the device correctly identified and detected anti-human immunoglobulins G (IgG) in solution with a concentration of 25 μg/ml.

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来源期刊
Micro and Nano Engineering
Micro and Nano Engineering Engineering-Electrical and Electronic Engineering
CiteScore
3.30
自引率
0.00%
发文量
67
审稿时长
80 days
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