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首页> 外文期刊>Applied Spectroscopy >Influences of Composition on Electroless Deposition of Silver Nanoparticles on Glass Substrates for Surface-Enhanced Raman Scattering Measurements
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Influences of Composition on Electroless Deposition of Silver Nanoparticles on Glass Substrates for Surface-Enhanced Raman Scattering Measurements

机译:表面增强拉曼散射测量中组成对玻璃基板上银纳米粒子化学沉积的影响

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摘要

A silver-mirror reaction was used to prepare active substrates for surface-enhanced Raman scattering (SERS). Glass plates were surface treated with a thin layer of silver nanoparticles (Ag-NPs). The factors influencing the performance of the SERS substrates were systematically studied. Factors included concentrations, species of complexing agents, and reducing agents. p-Nitrothiophenol (pNTP) was used to test the surfaces with Ag-NPs, with the observed signals used to compare the performance resulting from different reducing and complexing agents. The morphologies of the Ag-NPs formed by different reaction conditions were also examined by scanning electron microscope (SEM) and correlated with the SERS signals. Reducing agents included formaldehyde, sodium tartrate, and several carbohydrates. The results indicate that the use of glucose as a reducing agent produced the most suitable Ag-NPs for SERS measurements. Complexing agents of ammonia and ethyl amine offered the best performances. The optimal concentration of complexing agent was found to be approximately six times the concentration of silver ions. With a reaction time of 2 min, the optimized concentrations of glucose and silver nitrate were 0.5 M and 50 mM, respectively. In general, the enhancement factor was on the order of 105 to 106 for the substrates prepared in this work.
机译:银镜反应用于制备用于表面增强拉曼散射(SERS)的活性基质。玻璃板用银纳米颗粒(Ag-NPs)薄层进行表面处理。系统研究了影响SERS底物性能的因素。影响因素包括浓度,络合剂和还原剂的种类。对硝基苯硫酚(pNTP)用于测试带有Ag-NP的表面,观察到的信号用于比较不同还原剂和络合剂的性能。还通过扫描电子显微镜(SEM)检查了由不同反应条件形成的Ag-NP的形态,并与SERS信号相关。还原剂包括甲醛,酒石酸钠和几种碳水化合物。结果表明,使用葡萄糖作为还原剂可产生最适合用于SERS测量的Ag-NP。氨和乙胺的络合剂具有最佳性能。发现络合剂的最佳浓度约为银离子浓度的六倍。在2分钟的反应时间下,葡萄糖和硝酸银的最佳浓度分别为0.5 M和50 mM。通常,对于这项工作中制备的基材,增强因子约为10 5 到10 6

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    《Applied Spectroscopy》 |2008年第12期|1384-1394|共11页
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