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共振散射光强度与金粒子粒径的关系 总被引:38,自引:1,他引:37
采用柠檬酸钠还原法制备了不同粒径的金粒子,并研究了金粒子的共振散射光谱.结果表明,金粒子在粒径10~95nm范围内呈红色,最大吸收波长在517.8~553.3nm范围内.随着金粒子粒径增大,吸收峰红移.粒径为10~95nm金粒子的最强共振散射峰位于580nm处,此波长处的共振散射光强度3√I与金粒子粒径d成正比. 相似文献
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一维金纳米粒子链的制备及其光学特性研究 总被引:2,自引:0,他引:2
在没有模板存在的条件下, 只用表面活性剂为稳定剂, 制备了一维的金纳米粒子链, 详细考察了链状结构形成时各种试剂浓度、种类及其它外部条件对纳米粒子链形成的影响. 实验发现, 在HAuCl4 浓度1~5 mmol•L-1、十二烷基磺酸钠(SDS)浓度在2~8 mmol•L-1 (小于其CMC)范围内, 温度由60 ℃ 0.5 h内升高到100 ℃, 并在升温时间内分次将还原剂加完, 反应完成后不老化立即冷却到室温, 可以获得一维金纳米粒子链. 采用紫外可见光谱(UV-Vis)、同步光散射光谱和发射光谱等手段对金纳米粒子链的光学特性进行了研究, 用高分辨透射电子显微镜(HRTEM)研究了金纳米粒子的外观和粒径分布, 结果表明制备的金纳米粒子链是错落有致的链状结构, 结节处可以观察到金原子的排列晶格, 说明金纳米粒子的链状连接不是外部分子作用的结果; 表面等离子体共振吸收峰出现红移现象, 且随着链长的增加红移越明显; 具有非常强的光散射特性, 散射光强度比浓度相同的金纳米粒子高8倍; 发射光谱中明显观察到其三级散射, 表明其具有很好的非线性光学特性. 对金纳米粒子链的形成机理进行了探讨, 认为表面活性剂烷基亲油作用和金原子的聚集作用相互竞争是链状结构形成的原因. 相似文献
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金纳米粒子-胱氨酸三维网状结构的形成及其光谱特性研究 总被引:5,自引:0,他引:5
用柠檬酸三钠还原法制备了水溶性金纳米粒子, 粒子的平均粒径为4.5 nm, 它与胱氨酸作用后, 胱氨酸利用双硫键在其表面成功地进行了自组装, 获得了金纳米粒子-胱氨酸的三维网状结构. 用紫外-可见光谱、光散射光谱、透射电子显微镜等手段对胱氨酸组装前后的金纳米粒子进行了表征. 结果显示, 粒子与粒子之间, 通过静电引力形成了离子键, 吸收光谱变化明显, 金纳米粒子特征吸收峰由组装前518 nm红移到670 nm, 溶液颜色也相应由酒红色变为蓝紫色, 求出了金纳米粒子-胱氨酸三维网状结构形成过程中胱氨酸的最佳量, 金与胱氨酸的物质的量比为1∶1. 对于4.5 nm的金纳米粒子, 只有14%左右的胱氨酸在金纳米粒子的表面进行了自组装, 而多余的86%的胱氨酸未与金纳米粒子作用; 其共振瑞利散射光谱具有潜在的应用价值. 该研究对以金纳米粒子为基础的新材料制备进行了有益的探索. 相似文献
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金核银壳纳米粒子薄膜的制备及SERS活性研究 总被引:5,自引:0,他引:5
采用柠檬酸化学还原法制备金溶胶, 通过自组装技术在石英片表面制备金纳米粒子薄膜, 在银增强剂混合溶液中反应获得金核银壳纳米粒子薄膜. 用紫外-可见吸收光谱仪和原子力显微镜(AFM)研究了不同条件下制备的金核银壳纳米粒子薄膜的光谱特性和表面形貌, 并以结晶紫为探针分子测量了金核银壳纳米粒子薄膜的表面增强拉曼光谱(SERS). 结果表明, 金纳米粒子薄膜的分布、银增强剂反应时间的长短对金核银壳纳米粒子薄膜的形成均有重要影响. 制备过程中, 可以通过控制反应条件获得一定粒径的、具有良好表面增强拉曼散射活性的金核银壳纳米粒子薄膜. 相似文献
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通过RAFT合成聚(甲基丙烯酸缩水甘油酯)-b-聚(乙二醇甲基丙烯酸酯)嵌段共聚物(PGMA-bPMAPEG),再用半胱氨酸(Cys)使PGMA中的环氧基团开环,制备含有巯基的两亲水嵌段聚合物PMAPEG-bP(GMA-Cys)。并以其作为修饰剂,通过原位还原法使HAuCl4在NaBH4的还原下制备金/聚合物纳米复合粒子(Au@PMAPEG-b-P(GMA-Cys)NPs)。经FT-IR、UV-vis、TG、XRD、TEM和DLS表征,发现金纳米复合粒子呈均匀分散的球形,平均粒径约为10nm,在527nm处出现了金纳米粒子的表面等离子共振吸收峰,金约占总重量的49%。由于外层嵌段共聚物的修饰作用,金纳米复合粒子在室温下放置6个月未发生粒子间的聚集。 相似文献
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Electrogenerated chemiluminescence (ECL) for DNA hybridization detection is demonstrated based on DNA that was self-assembled onto a bare gold electrode and onto a gold nanoparticles modified gold electrode. A ruthenium complex served as an ECL tag. Gold nanoparticles were self-assembled on a gold electrode associated with a 1,6-hexanedithiol monolayer. The surface density of single stranded DNA (ssDNA) on the gold nanoparticle modified gold electrode was 4.8?×?1014 molecules per square centimeter which was 12-fold higher than that on the bare gold electrode. Hybridization was induced by exposure of the target ssDNA gold electrode to the solution of ECL probe consisting of complementary ssDNA tagged with ruthenium complex. The detection limit of target ssDNA on a gold nanoparticle modified gold electrode (6.7?×?10?12 mol L?1) is much lower than that on a bare gold electrode (1.2?×?10?10 mol L?1). The method has been applied to the detection of the DNA sequence related to cystic fibrosis. This work demonstrates that employment of gold nanoparticles self-assembled on a gold electrode is a promising strategy for the enhancement of the sensitivity of ECL detection of DNA. 相似文献
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SEUNG WHAN KO SEUNG HYUN LEE KI-MIN PARK SHIM SUNG LEE KYE CHUN NAM 《Supramolecular chemistry》2013,25(2):117-125
The preparation and characterization of gold nanoparticles (~6 nm in diameter) modified with mono-6-thio-β-cyclodextrin (II) is described. The resulting monolayer-protected gold nanoparticles are water-soluble and more stable. The concentration of II plays a crucial role for the distribution of the modified nanoparticles. When the ratio of concentration of II to HAuCl4,[II]/[HAuCl4] ≥ 0.93, a stable gold nanoparticle with uniform distribution and diameter of 6.0 ± 0.9 nm will be obtained. The recognition of modified gold nanoparticles to organic guest molecule is researched. The modified gold nanoparticles can make the electrochemical reduction current of nitrobenzene decrease and can be self-assembled in three-dimensional to form spherical clusters with ligand of methylene green. 相似文献
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采用简单的低温化学溶液沉积方法制备了分级多孔ZnO微球。利用X射线衍射(XRD)、扫描电子显微镜(SEM)、透射电镜(TEM)、N2吸附脱附以及紫外-可见分光光度计(UV-Vis)等对样品进行了表征。结果显示产物为分级多孔结构的ZnO微球,由直径约10~20 nm ZnO颗粒组装而成,比表面积为40 m2.g-1。把多孔ZnO微球用作染料敏化太阳能电池(DSCs)光阳极,结果表明,该光阳极在增强对入射光的散射作用的同时,为染料分子的吸附提供了较大比表面积,从而提高了DSCs的光伏性能。 相似文献
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The high quenching efficiency of metal nanoparticles has facilitated its use as quenchers in molecular beacons. To optimize this system, a good understanding of the many factors that influence molecular beacon performance is required. In this study, molecular beacon performance was evaluated as a function of gold nanoparticle size and its immobilization characteristics. Gold nanoparticles of 4 nm, 15 nm and 87 nm diameter, were immobilized onto glass slides. Each size regime offered distinctive optical properties for fluorescence quenching of molecular dyes that were conjugated to oligonucleotides that were immobilized to the gold nanoparticles. Rigid double stranded DNA was used as a model to place fluorophores at different distances from the gold nanoparticles. The effect of particle size and also the immobilization density of nanoparticles was evaluated. The 4 nm and 87 nm gold nanoparticles offered the highest sensitivity in terms of the change in fluorescence intensity as a function of distance (3-fold improvement for Cy5). The optical properties of the molecular fluorophore was of significance, with Cy5 offering higher contrast ratios than Cy3 due to the red-shifted emission spectrum relative to the plasmon peak. A high density of gold nanoparticles reduced contrast ratios, indicating preference for a monolayer of immobilized nanoparticles when considering analytical performance. Molecular beacon probes were then used in place of the double stranded oligonucleotides. There was a strong dependence of molecular beacon performance on the length of a linker used for attachment to the nanoparticle surface. The optimal optical performance was obtained with 4 nm gold nanoparticles that were immobilized as monolayers of low density (5.7 × 1011 particles cm−2) on glass surfaces. These nanoparticle surfaces offered a 2-fold improvement in analytical performance of the molecular beacons when compared to other nanoparticle sizes investigated. The principles developed in this study would assist in the design of solid phase molecular beacons using gold nanoparticles. 相似文献
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A mercaptoacetic acid (MAA)-modified cadmium sulfide (CdS) nanoparticle was synthesized in aqueous solution and used as an
oligonucleotide label for the electrochemical detection of nopaline synthase (NOS) terminator gene sequence. The carboxyl
groups on the surface of the CdS nanoparticle can be easily covalently linked with NH2-modified NOS oligonucleotide probe sequences. The target ssDNA sequence was fixed onto the electrode surface by covalently
linking to a mercaptoethanol self-assembled gold electrode, and the DNA hybridization of target ssDNA with probe ssDNA was
accomplished on the electrode surface. The CdS nanoparticles anchored on the hybrids were dissolved in the solution by the
oxidation with HNO3 and further detected by a sensitive differential pulse anodic stripping voltammetric method. The detection results can be
used for monitoring the hybridization, and the NOS target sequence was satisfactorily detected in the approximate range from
8.0 × 10−12 to 4.0 × 10−9 mol L−1 with a detection limit of 2.75 × 10−12 mol L−1 (3σ). The established method extended the nanoparticle-labeled electrochemical DNA analysis to genetically modified organisms
(GMOs) specific sequence samples with higher sensitivity and selectivity. 相似文献
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《Analytical letters》2012,45(18):2697-2706
This paper reports a core-shell nanoparticle system coated on the carbon paste electrode (CPE) for determination of hydrogen peroxide. The amino-functionalized shell-magnetic core nanoparticles have been proven to be an effective material for Hb immobilization. The core-shell nanoparticle system was constructed by immobilizing hemoglobin (Hb) on amino-functionalized shell@magnetic core composite nanoparticles (NH2-SiO2-CoFe2O4) with the bridge of gold nanoparticles (AuNPs). Electrochemical impedance spectroscopy, cyclic voltammetry, and chronoamperometry were used to characterize the obtained biosensor. The Hb/AuNPs/NH2-SiO2-CoFe2O4/CPE showed a linear range from 1.9 × 10?6 to 4.6 × 10?3 M, with a detection limit of 6.3 × 10?7 M (S/N = 3) under the optimized experimental conditions. A good affinity was shown due to the small apparent Michaelis–Menten constant of 2.68 mM. 相似文献
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Santanu Bhattacharyya Bipattaran Paramanik Simanta Kundu Prof. Amitava Patra 《Chemphyschem》2012,13(18):4155-4162
Considerable attention has been paid to hybrid organic–inorganic nanocomposites for designing new optical materials. Herein, we demonstrate the energy and hole transfer of hybrid hole‐transporting α‐sexithiophene (α‐STH) nanoparticle–CdTe quantum dot (QD) nanocomposites using steady‐state and time‐resolved spectroscopy. Absorption and photoluminescence studies confirm the loss of planarity of the α‐sexithiophene molecule due to the formation of polymer nanoparticles. Upon photoexcitation at 370 nm, a nonradiative energy transfer (73 %) occurs from the hole‐transporting α‐STH nanoparticles to the CdTe nanoparticles with a rate of energy transfer of 6.13×109 s?1. However, photoluminescence quenching of the CdTe QDs in the presence of the hole‐transporting α‐STH nanoparticles is observed at 490 nm excitation, which is due to both static‐quenching and hole‐transfer‐based dynamic‐quenching phenomena. The calculated hole‐transporting rate is 7.13×107 s?1 in the presence of 42×10?8 M α‐STH nanoparticles. Our findings suggest that the interest in α‐sexithiophene (α‐STH) nanoparticle–CdTe QD hybrid nanocomposites might grow in the coming years because of various potential applications, such as solar cells, optoelectronic devices, and so on. 相似文献