Pramanik Avijit, Gao Ye, Gates Kaelin, Begum Salma, Ray Paresh Chandra
Department of Chemistry and Biochemistry, Jackson State University, Jackson 39217, Mississippi, United States.
ACS Omega. 2019 Jun 25;4(6):11112-11118. doi: 10.1021/acsomega.9b00866. eCollection 2019 Jun 30.
Raman spectroscopy fingerprinting features many technological applications. For this purpose, the weak Raman signals need to be boosted dramatically by surface-enhanced Raman spectroscopy (SERS), which provides immense Raman enhancement via plasmonic and chemical mechanisms (CM). In this manuscript, we reveal the giant chemical as well as extremely high SERS enhancement from a three-dimensional MoS O -gold nanoparticle (GNP) hybrid, which has capability for ultrasensitive label-free sensing of chemical and biological molecules. Notably, reported data show that the chemical enhancement for the MoS O surface is ∼10, which is comparable with the plasmonic enhancement factor (EF) by GNP. Reported data show that the total Raman EF is ∼10 from the GNP-MoS O hybrid. Intriguingly, combined experimental and theoretical finite difference time domain stimulation modeling findings show that the synergistic effect of electromagnetic mechanism and CM is responsible for huge SERS enhancement. Experimental results demonstrate that a proposed hybrid SERS platform can be used for fingerprint sensing of different multiple drug resistance bacteria at 5 cfu/mL concentration. Importantly, the current manuscript provides a good strategy for manipulating the SERS sensitivity to 13 orders of magnitude, which is instrumental for next-generation technological applications of Raman spectroscopy.
拉曼光谱指纹识别具有许多技术应用。为此,微弱的拉曼信号需要通过表面增强拉曼光谱(SERS)大幅增强,SERS通过等离子体和化学机制(CM)提供巨大的拉曼增强。在本论文中,我们揭示了三维MoS₂O₅-金纳米颗粒(GNP)杂化物具有巨大的化学增强以及极高的SERS增强,它有能力对化学和生物分子进行超灵敏无标记传感。值得注意的是,报道的数据表明MoS₂O₅表面的化学增强约为10,这与GNP的等离子体增强因子(EF)相当。报道的数据表明GNP-MoS₂O₅杂化物的总拉曼EF约为10⁶。有趣的是,结合实验和理论有限差分时域模拟结果表明,电磁机制和CM的协同作用是巨大SERS增强的原因。实验结果表明,所提出的混合SERS平台可用于对浓度为5 cfu/mL的不同多重耐药细菌进行指纹传感。重要的是,本论文提供了一种将SERS灵敏度提高13个数量级的良好策略,这对拉曼光谱的下一代技术应用至关重要。