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1.
提出了一种组蛋白乙酰化修饰检测的耦合增强拉曼散射生物传感新方法. 该方法以金纳米粒子为表面增强拉曼散射(SERS)基底, 表面修饰乙酰化组蛋白H3多肽为识别探针, 对甲氧基苯硫酚(4-MTP)为拉曼标记物, 制备了组蛋白乙酰化修饰检测的SERS纳米探针. 通过紫外可见吸收光谱与动态光散射分析, 证实了组蛋白乙酰化抗体可介导SERS纳米粒子发生可控组装与聚集, 使SERS纳米探针间发生局域电场共振耦合, 产生显著增强的SERS信号. 基于此, 通过待测抗原与SERS纳米探针对抗体的竞争性相互作用, 我们设计了组蛋白乙酰化修饰检测的竞争免疫SERS生物传感方法. 该法操作简便、快速、重现性好, 且裸眼即能进行可视化鉴定. 通过设计不同染料标记的SERS纳米探针, 该法有望实现多种组蛋白修饰的复合检测.  相似文献   

2.
多巴胺缺乏是导致帕金森疾病临床症状的主要原因。为有效检测分析多巴胺分子,本文通过磁控溅射技术制备了一种具有纳米岛状结构的银薄膜,使用无机碱性双氧水作为清洁还原剂,还原制备了一种毛胆状多纳米针尖的金纳米结构,并将纳米岛状结构的银薄膜和毛胆状多纳米针尖的金纳米结构作为表面增强拉曼散射(SERS)基底。通过银膜承载多巴胺分子,并滴加覆盖毛胆状多针尖的金纳米结构,利用具有高粗糙度的银膜表面与金纳米针尖异质结构形成的界面"热点",有效增强多巴胺分子的拉曼散射信号,并在尿液样品中实现多巴胺分子的传感检测。本研究构建的银膜@金纳米针尖表面增强拉曼散射传感界面,对于生物标志物分子的检测具有灵敏度高和抗干扰能力强的优势。  相似文献   

3.
基于贵金属纳米粒子的SERS活性基底研究进展   总被引:2,自引:0,他引:2  
表面增强拉曼光谱(SERS)是一种新兴的分析技术,具有很高的检测灵敏度,可以实现单分子量级的检测,并且能够提供丰富的分子结构信息。将SERS发展成为一种具有实际应用意义的分析技术,其关键是制备灵敏度高、稳定性高、重现性好、选择性高的SERS活性基底。对贵金属纳米粒子表面进行分子修饰,或者将贵金属纳米粒子与基质材料进行复合,可以组成融合贵金属纳米粒子的SERS活性并弥补其缺陷的新型SERS基底材料。本文综述了近年来基于贵金属纳米粒子常见的分子修饰和基质复合型SERS活性基底的研究进展。  相似文献   

4.
《分析试验室》2021,40(9):1109-1116
表面增强拉曼散射(SERS)光谱具有灵敏度高、检测速度快及选择性好等优点。近年来SERS光谱被广泛地应用于分析化学、环境科学、生物传感和界面催化等领域。SERS基底的性能是SERS技术能否得到广泛应用的关键问题。磁性-等离子体纳米复合材料具有SERS活性高、磁分离速度快和稳定性高的特点,已成为材料研究领域的热点之一。从食品安全、环境保护、生物传感与医学诊断、有机污染物的光催化降解及反应监测、药品质量检测五个方面出发,综述了近年来磁性-等离子体纳米复合材料在SERS检测中的应用,对目前磁性-等离子体纳米复合材料作为SERS基底的应用所存在的问题进行了讨论,并展望了未来的研究发展方向。  相似文献   

5.
胡娟  张春阳 《化学进展》2010,22(8):1641-1647
表面增强拉曼散射(SERS)是一种基于拉曼散射原理识别生物及化学分子的分析方法。SERS具有灵敏度高、水干扰小、分辨率高、稳定性好等优点,广泛应用于生物分析和生物医学研究领域。近年来,SERS技术在基因分析领域得到迅速的发展,成为国内外研究的热点。本文对应用于基因分析的一些最新SERS技术(包括基因的免标记检测和标记检测)进行较为全面的综述,着重介绍了免标记检测中基于金属纳米粒子和针尖增强拉曼散射的SERS技术,标记检测中基于拉曼活性物、PCR技术、分子信标、基底和标记物的SERS信号放大技术,并概括了基因多组分检测技术及SERS技术的应用前景。  相似文献   

6.
《分析试验室》2021,40(8):869-874
采用海胆状金纳米粒子(GNUs)柔性表面增强拉曼散射(SERS)基底,检测了水果表皮的福美双残留。GNUs表面尖锐的突起能够极大增强周围电磁场,提高检测灵敏度。与普通柔性基底相比,这种高粘性的SERS基底具有不易老化和不易脱胶等优点。评估了SERS基底的灵敏度、重现性和稳定性。通过简单的"粘贴-剥离"法,利用组装的柔性基底对雪花梨表面的福美双残留进行了原位检测。在1×10~(-10)~1×10~(-4)mol/L范围内,雪花梨表面的福美双浓度的对数与SERS强度呈线性关系,GNUs柔性基底对福美双的检测限为92 pmol/L,方法可用于食品安全、环境检测、公共安全等领域。  相似文献   

7.
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   

8.
张亮  贺辛亥  任研伟  陈彤善  陈东圳 《应用化学》2020,37(12):1364-1373
表面增强拉曼散射(Surface enhanced Raman scattering,SERS)是一种分子检测光谱技术,借助SERS基底,可对生物、化学等复杂体系中的痕量分子进行分析。 其中静电纺纳米纤维SERS基底由于具有高比表面积、可透气透水、柔韧可折叠弯曲等特点,在复杂体系中提取、过滤、浓缩痕量分子等应用场景中,其表面结构具有其他刚性SERS基底不可比拟的优势。然而,静电纺纳米纤维SERS基底的发展却受到制备方法的限制,存在检测灵敏度较低、制备过程复杂等问题。 因此,目前的研究工作主要集中在新型制备方法及工艺的开发。 本文综述了静电纺纳米金银复合纤维SERS基底的几种常用制备方法,包括直接混合纺丝法、化学吸附法、静电吸附法、物理沉积法和原位化学还原法,并总结了静电纺纳米纤维SERS基底在复杂体系中提取、过滤、浓缩待测分子的应用,最后对静电纺纳米复合纤维SERS基底的发展进行了展望。  相似文献   

9.
在氨基改性的多孔材料SBA-15表面修饰金纳米颗粒制备了表面增强拉曼(SERS)基底,以四巯基吡啶(4-Mpy)作为探针分子,对基底的SERS性能进行评价.结果显示,利用金纳米粒子在介孔材料中的有效负载形成的结构有利于SERS信号的增强,基底在保存5个月后信号降低幅度较小,稳定性好.将此基底应用于鸡肉和鸡饲料提取液中恩诺沙星的SERS检测,在0.1~1 mg/kg浓度范围内,特征峰的拉曼信号强度与恩诺沙星浓度具有良好线性关系(R~2分别等于0.98和0.99),检测限均达到0.1 mg/kg.该检测方法简单快速、灵敏度高、稳定性好,为SERS技术应用于抗生素的快速检测提供了新的途径.  相似文献   

10.
表面增强拉曼光谱(Surface-enhanced Raman spectroscopy,SERS)作为一种新型分析检测技术,具有检测快速、灵敏度高、非破坏性、原位检测等优点。高灵敏度、高稳定性、高增强能力及高重复性、可循环利用的SERS活性基底的制备是获得较好SERS信号的一个重要因素。与传统的单一组分SERS基底相比,将多种不同功能的纳米材料进行复合,形成的核壳型结构纳米粒子作为一种新型SERS活性基底,不仅能获得更为稳定的SERS信号,还能赋予其富集分离、催化和特异性分子识别等功能。该文综述了近年来基于复合贵金属、磁性材料、半导体、复合有机等核壳型结构纳米粒子的SERS活性基底的研究进展。  相似文献   

11.
Surface‐enhanced Raman spectroscopy (SERS) is an attractive tool for the sensing of molecules in the fields of chemical and biochemical analysis as it enables the sensitive detection of molecular fingerprint information even at the single‐molecule level. In addition to traditional coinage metals in SERS analysis, recent research on noble‐metal‐free materials has also yielded highly sensitive SERS activity. This Minireview presents the recent development of noble‐metal‐free materials as SERS substrates and their potential applications, especially semiconductors and emerging graphene‐based nanostructures. Rather than providing an exhaustive review of this field, possible contributions from semiconductor substrates, characteristics of graphene enhanced Raman scattering, as well as effect factors such as surface plasmon resonance, structure and defects of the nanostructures that are considered essential for SERS activity are emphasized. The intention is to illustrate, through these examples, that the promise of noble‐metal‐free materials for enhancing detection sensitivity can further fuel the development of SERS‐related applications.  相似文献   

12.
石墨碳纳米材料因其特殊的光学性质而受到广泛关注。石墨碳纳米材料最引人注目的光学性质之一是其独特的拉曼性质,作为拉曼探针,石墨碳纳米材料在对于复杂生物样品,极端测试条件和定量拉曼检测方面都有很好的应用;除了拉曼性质以外,单壁碳纳米管(SWNTs)独特的近红外二区(NIR-II,1000-1700 nm)荧光性质,具有穿透深度大、分辨率高的荧光成像特点,在生物活体成像领域也得到了很好的应用。除了光致发光特性,石墨碳纳米材料还具有优异的光热转换效应,同时具有比表面积大的特点,被广泛应用在针对肿瘤的热疗及其它疗法协同治疗当中。除此之外,石墨碳纳米材料还是一种高效的信号传导基底,可以猝灭激发态的染料和光敏剂,利用该类性质设计的生物传感器和纳米药物,显现出高灵敏、高选择性的特点。本文主要结合本课题组的工作,总结和探讨了石墨碳纳米材料作为光学探针、光热材料和信号传递基底在生化传感领域的应用。  相似文献   

13.
何欣  蒋彩云  丁涛  王玉萍 《应用化学》2022,39(8):1167-1176
表面增强拉曼散射(Surface Enhanced Raman Scattering,SERS)是一种振动光谱技术,可直接识别目标分析物。在分析应用中,SERS信号的重现性极其重要,而这在很大程度上取决于SERS基底结构的均匀性。目前,SERS基底的重现性一直是制约该技术在分析测试中广泛应用的瓶颈,规则排列的纳米结构构成的有序化SERS基底的可控制备是该领域发展的前沿和趋势。本文就SERS基底的有序化制备方法及其应用进行了总结,分析了自组装法、光刻技术和模板辅助法所制备的有序SERS基底的特征、有序性形成原理和在分析测试中应用的可行性,为拓展SERS的实际应用提供一定的参考。  相似文献   

14.
Nanosized surface-enhanced Raman scattering (SERS) substrates fabricated by the controlled growth of metal nanostructures on water-dispersed two-dimensional nanomaterials can open a new avenue for SERS analysis of liquid samples in biological fields. In this work, regular and uniform Ag nanostructures were grown on the surface of graphene oxide (GO) through a microwave-assisted hydrothermal method. Polyamidoamine (PAMAM) dendrimers were assembled on the surface of GO to form GO/PAMAM templates for growing Ag nanostructures, which are primarily comprised of Ag dimers and trimers. The prepared Ag/GO nanocomposites are highly dispersed and stable in aqueous solution and may be used as substrates for enhanced Raman detection of rhodamine 6?G (R6G) in aqueous solution. This special substrate provides high-performance SERS and suppresses R6G fluorescence in aqueous solution and is promising as a nanosized material for the enhanced Raman detection of liquid samples in biological diagnostics.  相似文献   

15.
Sensitive and detailed molecular structural information plays an increasing role in molecular biophysics and molecular medicine. Therefore, vibrational spectroscopic techniques, such as Raman scattering, which provide high structural information content are of growing interest in biophysical and biomedical research. Raman spectroscopy can be revolutionized when the inelastic scattering process takes place in the very close vicinity of metal nanostructures. Under these conditions, strongly increased Raman signals can be obtained due to resonances between optical fields and the collective oscillations of the free electrons in the metal. This effect of surface-enhanced Raman scattering (SERS) allows us to push vibrational spectroscopy to new limits in detection sensitivity, lateral resolution, and molecular structural selectivity. This opens up exciting perspectives also in molecular biospectroscopy. This article highlights three directions where SERS can offer interesting new capabilities. This includes SERS as a technique for detecting and tracking a single molecule, a SERS-based nanosensor for probing the chemical composition and the pH value in a live cell, and the effect of so-called surface-enhanced Raman optical activity, which provides information on the chiral organization of molecules on surfaces.  相似文献   

16.
表面增强拉曼光谱(SERS)技术可极大增强传统拉曼光谱的信号强度,从而拓展拉曼光谱的应用范围.针对SERS技术在分析对象、分析环境的普适性和分析效率方面的限制,本文设计并发展了一种透明、柔性、自支撑SERS基底的制备、保存和使用方法.该基底由聚合物聚甲基丙烯酸甲酯(PMMA)和在其表面镶嵌的金属纳米结构组成,可以通过背入射法用于任意形貌样品表面的直接和在线检测.柔性SERS(Ag)基底在R6G水溶液表面的检测限小于1pmol/L.  相似文献   

17.
Two-dimensional nanomaterials, especially graphene and single- or few-layer transition metal dichalcogenide nanosheets, have attracted great research interest in recent years due to their distinctive physical, chemical and electronic properties as well as their great potentials for a broad range of applications. Recently, great efforts have also been devoted to the controlled synthesis of thin nanostructures of metals, one of the most studied traditional materials, for various applications. In this minireview, we review the recent progress in the synthesis and applications of thin metal nanostructures with a focus on metal nanoplates and nanosheets. First of all, various methods for the synthesis of metal nanoplates and nanosheets are summarized. After a brief introduction of their properties, some applications of metal nanoplates and nanosheets, such as catalysis, surface enhanced Raman scattering (SERS), sensing and near-infrared photothermal therapy are described.  相似文献   

18.
Certain colloidal metals such as.silver (Ag), gold (Au) and copper, (Cu), when properly or assembled, display remarkable enhancement effect to the Raman scattering cross section of adsorbed molecules. This surface-enhanced Raman scattering (SERS) phenomenon has found wide applications in the study of interfacial chemical processes and is a potentially non-invasive technique in molecule-specific analysis. However, the SERS activity of metal colloids depends sensitively on both the synthetic method and the aggregation and assembly procedure, making it difficult to develop SERS into a reliable and quantitative analytical technique. To solve this problem, one needs to develop a substrate with a well-defined adsorption area and SERS activity. One approach to achieve this goal is to assemble a monolayer of uniform colloidal metals onto a well-defined secondary substrate. Here we report our effort in assembling monolayers of uniform Au nanoparticles on the well-defined optical-inactive microparticles in a layer-by-layer (LbL) manner and the use of such assembly as SERS-active substrate.  相似文献   

19.
Surface enhanced Raman spectroscopy (SERS) is a powerful optical sensing technique that can detect analytes of extremely low concentrations. However, the presence of enough SERS probes in the detection area and a close contact between analytes and SERS probes are critical for efficient acquisition of a SERS signal. Presented here is a light‐powered micro/nanomotor (MNM) that can serve as an active SERS probe. The matchlike AgNW@SiO2 core–shell structure of the nanomotors work as SERS probes based on the shell‐isolated enhanced Raman mechanism. The AgCl tail serves as photocatalytic nanoengine, providing a self‐propulsion force by light‐induced self‐diffusiophoresis. The phototactic behavior was utilized to achieve enrichment of the nanomotor‐based SERS probes for on‐demand biochemical sensing. The results demonstrate the possibility of using photocatalytic nanomotors as active SERS probes for remote, light‐controlled, and smart biochemical sensing on the micro/nanoscale.  相似文献   

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