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基于双金属纳米粒子功能化纳米柱的表面增强拉曼散射法高灵敏宽范围检测噻菌灵

Highly Sensitive and Wide-Range Detection of Thiabendazole via Surface-Enhanced Raman Scattering Using Bimetallic Nanoparticle-Functionalized Nanopillars.

机构信息

Department of Biomechatronic Engineering, College of Biotechnology and Bioengineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.

出版信息

Biosensors (Basel). 2024 Mar 4;14(3):133. doi: 10.3390/bios14030133.

Abstract

Thiabendazole (TBZ) is a benzimidazole; owing to its potent antimicrobial properties, TBZ is extensively employed in agriculture as a fungicide and pesticide. However, TBZ poses environmental risks, and excessive exposure to TBZ through various leakage pathways can cause adverse effects in humans. Therefore, a method must be developed for early and sensitive detection of TBZ over a range of concentrations, considering both human and environmental perspectives. In this study, we used silver nanopillar structures (SNPis) and Au@Ag bimetallic nanoparticles (BNPs) to fabricate a BNP@SNPi substrate. This substrate exhibited a broad reaction surface with significantly enhanced surface-enhanced Raman scattering hotspots, demonstrating excellent Raman performance, along with high reproducibility, sensitivity, and selectivity for TBZ detection. Ultimately, the BNP@SNPi substrate successfully detected TBZ across a wide concentration range in samples of tap water, drinking water, juice, and human serum, with respective limits of detection of 146.5, 245.5, 195.6, and 219.4 pM. This study highlights BNP@SNPi as a promising sensor platform for TBZ detection in diverse environments and contributes to environmental monitoring and bioanalytical studies.

摘要

噻苯达唑(TBZ)是一种苯并咪唑类化合物;由于其具有很强的抗菌特性,TBZ 在农业中被广泛用作杀菌剂和杀虫剂。然而,TBZ 存在环境风险,通过各种泄漏途径过度暴露于 TBZ 可能会对人类造成不良影响。因此,必须开发一种方法,以便从人类和环境的角度出发,在广泛的浓度范围内对 TBZ 进行早期和敏感的检测。在这项研究中,我们使用银纳米柱结构(SNPis)和 Au@Ag 双金属纳米粒子(BNPs)来制造 BNPs@SNPi 基底。该基底具有宽阔的反应表面,具有明显增强的表面增强拉曼散射热点,表现出出色的拉曼性能,同时具有高重现性、灵敏度和对 TBZ 检测的选择性。最终,BNPs@SNPi 基底成功地在自来水、饮用水、果汁和人血清样本中检测到了广泛浓度范围内的 TBZ,其检测限分别为 146.5、245.5、195.6 和 219.4 pM。本研究强调了 BNPs@SNPi 作为一种有前途的 TBZ 检测传感器平台,可用于不同环境中的检测,并为环境监测和生物分析研究做出了贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5696/10968244/ae10ca341dff/biosensors-14-00133-sch001.jpg

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