Atta Supriya, Vo-Dinh Tuan
Fitzpatrick Institute for Photonics, Duke University, Durham, North Carolina 27708, United States.
Department of Biomedical Engineering, Duke University, Durham, North Carolina 27708, United States.
ACS Appl Nano Mater. 2022 Sep 23;5(9):12562-12570. doi: 10.1021/acsanm.2c02234. Epub 2022 Aug 29.
There has been increasing interest in evolution of plasmonic nanoplatforms based on noble metal nanoparticles to achieve ultrasensitive detection of trace analyte molecules through solution-based surface-enhanced Raman spectroscopy (SERS). This work presents a surfactant-free synthesis method of bimetallic gold nanostars coated with silver (BGNS-Ag) having sharp, high aspect-ratio spikes for achieving ultrahigh detection sensitivity and high reproducibility. Specifically, the unique BGNS-Ag platform combines both the strong SERS enhancement effects of gold nanostar sharp spikes and the high scattering feature of the silver-gold bimetallic structure. To achieve SERS reproducibility, this solution-based SERS measurement requires minimal sample preparation without addition of any external reagents, which can cause irregular aggregation of nanoparticles and reduce the reproducibility of SERS measurements. Moreover, we have streamlined our SERS sensing procedure by using standard well-plates and a portable Raman device for SERS measurements, which could be utilized for rapid on-site detection. This solution-based SERS performance was studied using methylene blue (MB) as a model analyte system. The detection limit of MB was as low as 42 pM, indicating high sensitivity of detection using BGNS-Ag. To illustrate the usefulness for environmental sensing, we showed that the SERS sensor can detect a pesticide, thiram, at a concentration as low as 0.8 nM. This study demonstrated that the BGNS-Ag system could serve as an effective and versatile plasmonic-active platform for reproducible, fast, and in-field detection of small organic analytes at trace levels.
基于贵金属纳米粒子的等离子体纳米平台的发展越来越受到关注,其目的是通过基于溶液的表面增强拉曼光谱(SERS)实现对痕量分析物分子的超灵敏检测。这项工作提出了一种无表面活性剂的合成方法,用于制备包覆银的双金属金纳米星(BGNS-Ag),该纳米星具有尖锐、高纵横比的尖刺,以实现超高检测灵敏度和高重现性。具体而言,独特的BGNS-Ag平台结合了金纳米星尖锐尖刺的强SERS增强效应和银金双金属结构的高散射特性。为了实现SERS重现性,这种基于溶液的SERS测量所需的样品制备最少,无需添加任何外部试剂,因为外部试剂会导致纳米粒子不规则聚集并降低SERS测量的重现性。此外,我们通过使用标准微孔板和便携式拉曼设备进行SERS测量,简化了SERS传感程序,该设备可用于快速现场检测。使用亚甲基蓝(MB)作为模型分析物系统研究了这种基于溶液的SERS性能。MB的检测限低至42 pM,表明使用BGNS-Ag检测具有高灵敏度。为了说明其在环境传感中的实用性,我们展示了SERS传感器能够检测浓度低至0.8 nM的农药福美双。这项研究表明,BGNS-Ag系统可作为一种有效且通用的等离子体活性平台,用于对痕量水平的小型有机分析物进行可重现、快速和现场检测。