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基于表面增强拉曼散射的高效细菌生物传感器用具有 3D 避雷针效应的金纳米立方体/纳米云母片的柔性纳米杂化基底

Flexible nanohybrid substrates utilizing gold nanocubes/nano mica platelets with 3D lightning-rod effect for highly efficient bacterial biosensors based on surface-enhanced Raman scattering.

机构信息

Department of Materials Science and Engineering, National Taiwan University of Science and Technology, Taipei 10607, Taiwan.

Ph.D. Program in Clinical Drug Development of Herbal Medicine, College of Pharmacy, Taipei Medical University, Taipei 11031, Taiwan.

出版信息

J Mater Chem B. 2024 Mar 27;12(13):3226-3239. doi: 10.1039/d3tb02897f.

Abstract

In this study, gold nanocubes (AuNCs) were quickly synthesized using the seed-mediated growth method and reduced onto the surface of two-dimensional (2D) delaminated nano mica platelets (NMPs), enabling the development of AuNCs/NMPs nanohybrids with a 3D lightning-rod effect. First, the growth-solution amount can be changed to easily adjust the AuNCs average-particle size within a range of 30-70 nm. The use of the cationic surfactant cetyltrimethylammonium chloride as a protective agent allowed the surface of AuNCs and nanohybrids to be positively charged. Positively charged nanohybrid surfaces presented a good adsorption effect for detecting molecules with negative charges on the surface. Additionally, the NMP surfaces were rich in ionic charges and provided a large specific surface area for stabilizing the growth of AuNCs. Delaminated AuNCs/NMPs nanohybrids can generate a 3D hotspot effect through self-assembly to enhance the Raman signal. Surface-enhanced Raman scattering (SERS) is highly sensitive in detecting adenine biomolecules. Its limit of detection (LOD) and Raman enhancement factor reached 10 M and 3.6 × 10, respectively. Excellent reproducibility was obtained owing to the relatively regular arrangement of AuNC particles, and the relative standard deviation (RSD) was 10.7%. Finally, the surface of NMPs was modified by adding the hydrophilic poly(oxyethylene)-diamine (POE2000) and amphiphilic PIB-POE-PIB copolymer at different weight ratios. The adjustment of the surface hydrophilicity and hydrophobicity of AuNCs/NMPs nanohybrids led to better adsorption and selectivity for bacteria. AuNCs/POE/NMPs and AuNCs/PIB-POE-PIB/NMPs were further applied to the SERS detection of hydrophilic and hydrophobic , respectively. The SERS-detection results suggest that the LOD of hydrophilic and hydrophobic reached 92 CFU mL and 1.6 × 10 CFU mL, respectively. The AuNCs/POE/NMPs and AuNCs/PIB-POE-PIB/NMPs nanohybrids had different hydrophilic-hydrophobic affinities, which greatly improved the selectivity and sensitivity for detecting bacteria with different hydrophilicity and hydrophobicity. Therefore, fast, highly selective, and highly sensitive SERS biological-detection results were obtained.

摘要

在这项研究中,使用种子介导生长法快速合成了金纳米立方(AuNCs),并将其还原到二维(2D)剥离纳米云母片(NMP)的表面上,从而开发出具有 3D 避雷针效应的 AuNCs/NMP 纳米杂化物。首先,可以改变生长溶液的量,轻松调整 AuNCs 的平均粒径在 30-70nm 的范围内。使用阳离子表面活性剂十六烷基三甲基氯化铵作为保护剂,使 AuNCs 和纳米杂化物的表面带正电荷。带正电的纳米杂化物表面对检测表面带负电荷的分子具有良好的吸附效果。此外,NMP 表面富含离子电荷,并为 AuNCs 的生长提供了较大的比表面积。剥离的 AuNCs/NMP 纳米杂化物可以通过自组装产生 3D 热点效应,从而增强拉曼信号。表面增强拉曼散射(SERS)在检测腺嘌呤生物分子方面具有高度灵敏性。其检测限(LOD)和拉曼增强因子分别达到 10M 和 3.6×10,具有出色的重现性,这归因于 AuNC 颗粒的相对规则排列,相对标准偏差(RSD)为 10.7%。最后,通过添加不同重量比的亲水性聚(氧乙烯)-二胺(POE2000)和两亲性 PIB-POE-PIB 共聚物来修饰 NMP 的表面。AuNCs/NMPs 纳米杂化物表面亲水性和疏水性的调节导致其对细菌更好的吸附和选择性。AuNCs/POE/NMPs 和 AuNCs/PIB-POE-PIB/NMPs 分别进一步应用于亲水和疏水的 SERS 检测。SERS 检测结果表明,亲水和疏水的 LOD 分别达到 92CFUmL 和 1.6×10CFUmL。AuNCs/POE/NMPs 和 AuNCs/PIB-POE-PIB/NMPs 纳米杂化物具有不同的亲水-疏水性亲和力,这极大地提高了检测不同亲水性和疏水性细菌的选择性和灵敏度。因此,获得了快速、高选择性和高灵敏度的 SERS 生物检测结果。

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