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用于高效光热消融和微生物表面增强拉曼光谱检测的3D FeO@Au纳米颗粒的组装生长

Assembled growth of 3D FeO@Au nanoparticles for efficient photothermal ablation and SERS detection of microorganisms.

作者信息

Hong Wei-En, Hsu I-Ling, Huang Szu-Yung, Lee Chien-Wei, Ko Han, Tsai Pei-Jane, Shieh Dar-Bin, Huang Chih-Chia

机构信息

Department of Photonics, National Cheng Kung University, Tainan, Taiwan.

出版信息

J Mater Chem B. 2018 Sep 28;6(36):5689-5697. doi: 10.1039/c8tb00599k. Epub 2018 Aug 28.

Abstract

The development of a single agent with multifunctionality for the rapid detection and inhibition of the spread of pathogenic microorganisms is of great importance for environmental hygiene as well as water and food safety. For this purpose, we integrate plasmonic nano-Au, near-infrared (NIR)-activated FeO nanoclusters, and NIR-absorbing polydopamine to form a leukocyte-like FeO@Au nanostructure to treat microorganisms. Through high-temperature reduction of HAuCl with l-dopamine, Au atoms are spontaneously generated along with FeO nanoclusters via a site-selected atom deposition process between the Au(111) and FeO(222) lattice planes. Combining the magnetic properties of FeO and the optical functionality of gold nanoparticles, the FeO@Au nanohybrid exhibits effective photothermal conversion and magnetism-guided aggregation to improve the molecular surface-enhanced Raman scattering (SERS) signal, achieving a limit of detection on the micromolar to nanomolar level for methylene blue (MB) and 4-aminothiophenol (4-ATP). After magnetism-assisted adsorption, we adopt Escherichia coli (E. coli) as a model analyte and demonstrate label-free SERS sensing of bacterial cell molecular structures based on optical fingerprints and recyclable photothermal ablation of bacterial pathogens (Gram-positive, Gram-negative, and anaerobic bacteria).

摘要

开发一种具有多功能性的单一试剂,用于快速检测和抑制病原微生物的传播,这对于环境卫生以及水和食品安全至关重要。为此,我们将等离子体纳米金、近红外(NIR)激活的FeO纳米团簇和吸收近红外的聚多巴胺整合在一起,形成一种白细胞样的FeO@Au纳米结构来处理微生物。通过用l-多巴胺对HAuCl进行高温还原,Au原子与FeO纳米团簇一起通过Au(111)和FeO(222)晶格平面之间的位点选择原子沉积过程自发产生。结合FeO的磁性和金纳米颗粒的光学功能,FeO@Au纳米杂化物表现出有效的光热转换和磁引导聚集,以改善分子表面增强拉曼散射(SERS)信号,实现对亚甲基蓝(MB)和4-氨基硫酚(4-ATP)的微摩尔至纳摩尔水平的检测限。在磁辅助吸附后,我们以大肠杆菌(E. coli)作为模型分析物,基于光学指纹和对细菌病原体(革兰氏阳性菌、革兰氏阴性菌和厌氧菌)的可回收光热消融,展示了对细菌细胞分子结构的无标记SERS传感。

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