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1.
表面增强拉曼光谱(SERS)是一种研究分子吸附和界面现象的有效手段,它促进了拉曼光谱技术应用的发展,其增强机理主要包括电磁增强机理和化学增强机理。固体活性基底是SERS技术的重要组成部分,综述了水体系和非水体系SERS固体活性基底的研究状况及SERS固相基底在定量分析方面的应用,指出了SERS固体活性基底在非水体系的应用潜力。  相似文献   

2.
表面增强拉曼散射(surface-enhanced Raman scattering,SERS),是指吸附在粗糙的金属纳米结构表面的被分析物,在光照射下其拉曼光谱获得显著增强的异常表面光学现象。近年来,SERS技术已广泛地用于物质检测和生物传感等研究,在生物医学领域表现出巨大的应用潜力并取得了令人瞩目的研究成果。本文回顾了SERS探针技术在细胞识别、成像与诊疗等方面的应用及最新研究进展,重点介绍了SERS细胞探针的构建方法与原理,以及基于SERS探针的细胞检测应用策略,并讨论了SERS探针技术在细胞检测中仍有待解决的关键问题。  相似文献   

3.
纳米颗粒作为信号感应单元在化学与生物传感应用中已引起广泛关注,这些功能和金属纳米结构与光相互作用时产生的表面等离子体共振密切相关.表面增强拉曼散射(SERS),是指吸附在粗糙的金属纳米结构表面的被分析物,在光照射下其拉曼光谱获得显著增强的异常表面光学现象,近年来.SERS技术已广泛用于物质检测和生物传感等研究,在生物医学领域表现出巨大的应用潜力并取得了令人瞩目的研究成果.本文阐述了金纳米棒的制备方法、表面修饰和共轭生物分子的方法.并从金纳米棒表面增强拉曼散射的角度系统阐述基于金纳米棒表面增强拉曼散射的1D,2D,3D自组装,并介绍了近期金纳米棒表面增强拉曼散射在生物医学检测与成像中最具有代表性的应用研究.  相似文献   

4.
表面增强拉曼光谱:应用和发展   总被引:2,自引:0,他引:2  
表面增强拉曼光谱技术(Surface-enhanced Raman spectroscopy,SERS)是一种具有超高灵敏度的指纹光谱技术,目前已广泛应用于表面科学、材料科学、生物医学、药物分析、食品安全、环境检测等领域,是一种极具潜力的痕量分析技术。本文对SERS技术及相关的针尖增强拉曼光谱(Tip-enhanced Raman spectroscopy,TERS),壳层隔绝纳米粒子增强拉曼光谱(Shell-isolated nanoparticle-enhanced Raman spectroscopy,SHINERS)技术的发展及应用进行了综合评述,并探讨了其未来的研究热点及发展方向。  相似文献   

5.
表面增强拉曼散射(SERS)生物传感技术是以生物成分为敏感元件或探测对象,研究生物分子间相互作用的重要工具之一,被广泛应用于环境监测、食品安全、临床检验及疾病诊断等众多领域.本文总结了耦合增强SERS生物传感技术方面的进展及其在分析检测和癌症诊断方面的应用.主要包括基于耦合增强SERS生物传感技术方法、高灵敏度的SERS传感芯片的制备及其应用和新型SERS技术研究癌细胞及组织.  相似文献   

6.
表面增强拉曼光谱(Surface-enhanced Raman Spectroscopy, SERS)是基于拉曼散射效应,通过把被分析有机物吸附在经特殊处理的粗糙金属表面,使有机物的拉曼散射信号增强的一种具有高灵敏度的分析技术。SERS技术能快速检测出痕量残留物质,在表面痕量残留检测领域有很大的应用价值。本文对SERS技术在痕量残留检测方面的发展及应用进行了综述,并对未来SERS技术在表面痕量残留快速检测方面的应用进行了展望。  相似文献   

7.
SERS活性液芯光纤的制备及超灵敏检测应用   总被引:2,自引:0,他引:2  
表面增强拉曼光谱 (SERS)和表面增强共振拉曼光谱 (SERRS)技术的发展使拉曼光谱在各方面的应用突飞猛进 .利用粗糙银电极、蒸镀银岛膜、金和银溶胶的自组装膜等方法制备 SERS活性基底 ,可使拉曼光谱对样品的检测浓度达到 1 0 - 7~ 1 0 - 12 mol/ L,目前可在 1 .0 n L 内检测数十个分子[1~ 3] .1 997年 Nie[4 ] 和 Kneipp等[5] 几乎同时报道拉曼检测达到了单分子水平 .表面修饰的光纤作为传感器 ,在实时、原位或现场检测等应用领域的研究十分活跃 [6~ 9] .液芯光纤作为光纤光谱研究的分支 ,以其在液体样品检测中的独特优势备受关注…  相似文献   

8.
表面增强拉曼散射活性基底   总被引:7,自引:0,他引:7  
表面增强拉曼散射(SERS)是人们将激光拉曼光谱应用到表面科学研究中所发现的异常表面光学现象。它可以将吸附在材料表面的分子的拉曼信号放大106到1014倍,这使其在探测器的应用和单分子检测方面有着巨大的发展潜力。由于分子所吸附的基底表面形态是SERS效应能否发生和SERS信号强弱的重要影响因素,所以分子的承载基体是很关键的,因而SERS活性基底的研究一直是该领域的研究热点之一。本文总结了形态各异的表面增强拉曼散射活性基底,分析了最新发展并对其未来作一展望。  相似文献   

9.
随着社会经济的快速发展,环境污染与能源短缺逐渐成为人们必须面对的热点问题。为实现人类社会的可持续发展,开发环境友好新型清洁能源技术成为二十一世纪的迫切任务。其中,燃料电池被认为是最具发展潜力的新型清洁能源技术之一。拉曼光谱作为一种无损的指纹识别的分子光谱技术,适用于燃料电池材料的研究,尤其是表面增强拉曼光谱技术(SERS)和壳层隔绝表面增强拉曼光谱技术(SHINERS)的发展,为研究燃料电池中反应的痕量中间物种,理解燃料电池实际反应机理提供了一种非常好的原位光谱实验平台,有助于合理设计更高效的催化剂及电极材料。本文主要对拉曼光谱以及SERS和SHINERS在燃料电池领域从电池材料层面和电极表面分子反应层面的应用及其发展前景进行相关讨论。  相似文献   

10.
正表面增强拉曼散射(surface enhanced Raman scattering,SERS)光谱技术作为一种具有超高灵敏度的分子"指纹谱"识别技术,已被广泛应用于表面、界面研究、吸附物界面的物化性质研究、生物大分子的界面取向及构型、构象研究和结构  相似文献   

11.
蒋芸  崔颜  姚建林  顾仁敖 《化学学报》2006,64(3):240-244
通过表面增强拉曼光谱(SERS)研究了标记分子4,4'-联吡啶在金溶胶上的吸附行为,并将其与山羊抗小鼠IgG结合,获得SERS标记免疫金溶胶.在固相基底上组装抗体,两者组装得到固相抗体-抗原-标记抗体“三明治”结构.在单组分和双组分体系中借助抗体上标记金纳米粒子所带的SERS信号达到免疫检测的目的.  相似文献   

12.
通过表面增强拉曼光谱(SERS)研究了标记分子4,4'-联吡啶在金溶胶上的吸附行为, 并将其与山羊抗小鼠IgG结合, 获得SERS标记免疫金溶胶. 在固相基底上组装抗体, 两者组装得到固相抗体-抗原-标记抗体“三明治”结构. 在单组分和双组分体系中借助抗体上标记金纳米粒子所带的SERS信号达到免疫检测的目的.  相似文献   

13.
Xu S  Ji X  Xu W  Li X  Wang L  Bai Y  Zhao B  Ozaki Y 《The Analyst》2004,129(1):63-68
This paper reports a novel immunoassay based on surface-enhanced Raman scattering (SERS) and immunogold labelling with silver staining enhancement. Immunoreactions between immunogold colloids modified by a Raman-active probe molecule (e.g., 4-mercaptobenzoic acid) and antigens, which were captured by antibody-assembled chips such as silicon or quartz, were detected via SERS signals of Raman-active probe molecule. All the self-assembled steps were subjected to the measurements of ultraviolet-visible (UV-vis) spectra to monitor the formation of a sandwich structure onto a substrate. The immunoassay was performed by a sandwich structure consisting of three layers. The first layer was composed of immobilized antibody molecules of mouse polyclonal antibody against Hepatitis B virus surface antigen (PAb) on a silicon or quartz substrate. The second layer was the complementary Hepatitis B virus surface antigen (Antigen) molecules captured by PAb on the substrate. The third layer was composed of the probe-labelling immunogold nanoparticles, which were modified by mouse monoclonal antibody against Hepatitis B virus surface antigen (MAb) and 4-mercaptobenzoic acid (MBA) as the Raman-active probe on the surface of gold colloids. After silver staining enhancement, the antigen is identified by a SERS spectrum of MBA. A working curve of the intensity of a SERS signal at 1585 cm(-1) due to the [small nu](8a) aromatic ring vibration of MBA versus the concentration of analyte (Antigen) was obtained and the non-optimized detection limit for the Hepatitis B virus surface antigen was found to be as low as 0.5 [micro sign]g mL(-1).  相似文献   

14.
A one-step homogenous sensitive immunoassay using surface-enhanced Raman scattering (SERS) has been developed. This strategy is based on the aggregation of Raman reporter-labeled immunogold nanoparticles induced by the immunoreaction with corresponding antigens. The aggregation of gold nanoparticles results in a SERS signal increase of the Raman reporter. Therefore, human IgG could be directly determined by measuring the Raman signal of the reporter. The process of aggregation was investigated by transmission electron microscopy (TEM) and UV-Vis absorption spectroscopy. The effects of the temperature, time, and size of gold nanoparticles on the sensitivity of the assay were examined. Using human IgG as a model protein, a wide linear dynamic range (0.1-15 microg mL(-1)) was reached with low detection limit (0.1 microg mL(-1)) under optimized assay conditions. The successful test suggests that the application of the proposed method holds promising potential for simple, fast detection of proteins in the fields of molecular biology and clinical diagnostics.  相似文献   

15.
基于表面增强拉曼光谱的重金属离子检测   总被引:1,自引:0,他引:1  
以对巯基苯甲酸为拉曼标记和自组装修饰分子, 在光亮金基底上修饰后作为检测基底, 在金纳米粒子表面修饰后获得具有表面增强拉曼光谱信号的标记金溶胶. 修饰的基底及纳米离子通过重金属离子与羧基端的配位而发生相互作用, 最终形成“金属基底-对巯基苯甲酸/重金属离子/对巯基苯甲酸-金属纳米颗粒”的三明治结构. 采用扫描电镜表征纳米粒子的组装及以表面增强拉曼光谱检测表面标记分子的信号, 以此实现重金属离子的检测. 以强螯合剂EDTA溶液淋洗三明治结构, 使重金属离子与金属基底以及纳米颗粒上的羧基的配位作用断裂, 获得可再次利用的修饰金基底.  相似文献   

16.
A highly selective and sensitive surface-enhanced Raman scattering (SERS)-based immunoassay for the multiple detection of proteins has been developed. The proposed core shell magnetic gold (Au) nanoparticles allow for successful protein separation and high SERS enhancement for protein detection. To selectively detect a specific protein in a mixed protein solution, we employed the sandwich type SERS immunoassay with core shell magnetic Au nanoparticles utilizing specific antigen–antibody interactions. Based on this proposed SERS immunoassay, we can successfully detect proteins in very low concentrations (∼800 ag/mL of mouse IgG and ∼5 fg/mL of human IgG) with high reproducibility. Magnetically assisted protein separation and detection by this proposed SERS immunoassay would provide great potential for effective and sensitive multiple protein detection. This technique allows for the straightforward SERS-based bioassays for quantitative protein detections.  相似文献   

17.
利用金纳米粒子的聚集体作为表面增强拉曼散射(Surface enhanced Raman scattering,SERS)的增强基底,合成了一种二氧化硅包裹的核壳型SERS探针,并成功将该探针应用于活细胞的SERS光谱探测.实验中利用4-巯基苯甲酸(4-mercaptobenzoicacid,4MBA)作为拉曼标记物,...  相似文献   

18.
The design and initial characterization of the self-assembled gold colloid monolayer by a sandwich structure via the immunological identification are reported. The 13 nm gold colloid nanoparticles and the silicon or quartz substrates have been modified with the mouse polyclonal antibody against hepatitis B virus surface antigen (PAb) and the mouse monoclonal antibody against hepatitis B virus surface antigen (MAb), respectively. They can be linked by a special reaction with their corresponding hepatitis B virus surface antigen (Antigen) as a sandwich structure. Thus, the density of gold nanoparticles self-assembled on the substrate can be readily controlled by the amount of the antigen added. The resulting substrates have been characterized by atomic force microscopy (AFM) and surface-enhanced Raman scattering (SERS) spectroscopy when the gold nanoparticles were modified with SERS-active probe molecules of 4-mercaptobenzoic acid (MBA) after silver enhancement. These data show that the gold nanoparticles are separately fixed onto the substrate and form a uniform monolayer, which possess a set of features that make them very attractive for both basic and applied uses, including roughness, high stability, and biocompatibility.  相似文献   

19.
In this study, a nanoscale protein chip is prepared by using an etched polystyrene (PS) template. This protein chip can be directly used for immunoassay, with the help of Surface Enhanced Raman Scattering (SERS) spectra. Some glass slides submerged in aldehyde is initially prepared, modified with antibodies, human immunoglobulin G (IgG). Then PS arrays are self-assembled on these slides with the Langmuir–Blodgett method. The PS template pattern is transferred to the human IgG substrate using an etching process—slides are exposed to O2 plasma for 90 s. The PS nanoparticles are then washed away using phosphate buffered saline solution. Next, the slides are dipped into bovine serum albumin solution to ensure that the anti IgG would bond only to the human IgG. At this moment, a patterned protein chip is obtained. When used for protein detection, the protein chip could be immersed into labeled specificity antigen solution. Here we chose fluorescein isothiocyanate anti-human IgG. After washing, only bonded antigens remain. Fluorescence microscopy and SERS is used to characterize the samples. The SERS spectra intensity shows liner correlation with the concentration of anti-human IgG. All the experiments are conducted in a phosphate buffered saline solution at 37 °C for 2 h.  相似文献   

20.
M Zhang  A Zhao  D Li  H Sun  D Wang  H Guo  Q Gao  Z Gan  W Tao 《The Analyst》2012,137(19):4584-4592
This paper reports the synthesis of a new class of NaLnF(4)-Ag (Ln = Nd, Sm, Eu, Tb, Ho) hybrid nanorice and its application as a surface-enhanced Raman scattering (SERS) substrate in chemical analyses. Rice-shaped NaLnF(4) nanoparticles as templates are prepared by a modified hydrothermal method. Then, the NaLnF(4) nanorice particles are decorated with Ag nanoparticles by magnetron sputtering method to form NaLnF(4)-Ag hybrid nanostructures. The high-density Ag nanogaps on NaLnF(4) can be obtained by the prolonging sputtering times or increasing the sputtering powers. These nanogaps can serve as Raman 'hot spots', leading to dramatic enhancement of the Raman signal. The NaLnF(4)-Ag hybrid nanorice is found to be robust and is an efficient SERS substrate for the vibrational spectroscopic characterization of molecular adsorbates; the Raman enhancement factor of Rhodamine 6G (R6G) absorbed on NaLnF(4)-Ag nanorice is estimated to be about 10(13). Since the produced NaLnF(4)-Ag hybrid nanorice particles are firmly fastened on a silicon wafer, they can serve as universal SERS substrates to detect target analytes. We also evaluate their SERS performances using 4-mercaptopyridine (Mpy), and 4-mercaptobenzoic acid (MBA) molecules, and the detection limit for Mpy and MBA is as low as 10(-12) M and 10(-10) M, respectively, which meets the requirements of the ultratrace detection of analytes. This simple and highly efficient approach to the large-scale synthesis of NaLnF(4)-Ag nanorice with high SERS activity and sensitivity makes it a perfect choice for practical SERS detection applications.  相似文献   

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