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Electrical and Thermal Conductivities of Gold and Silver Nanoparticles in Solutions and Films and Electrical Field Enhanced Surface-Enhanced Raman Scattering (SERS)

机译:溶液和薄膜中金和银纳米粒子的电导率和热导率以及电场增强的表面增强拉曼散射(SERS)

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Electrical and thermal conductivities of metal nanoparticles and their aggregates are important for many device applications involving nanomaterials. In this work, the electrical conductivity of gold nanoparticle aggregates has been measured and found to be a useful probe of the surface chemistry of the nanoparticles. It has been observed that the conductivity of the gold nanoparticle aggregates in solution increases with light illumination or thermal heating and recovers completely to the initial value upon removal of the light or heat. The amount of change in conductivity depends on the amount of heat or light. The conductivity change is tentatively attributed to ion dissociation from the nanoparticle surface due to heating or light illumination. Meanwhile, the thermal conductivity of dried silver nanoparticles (30-60 nm) has been measured and found to be around 2 W/m·K. This is consistent with previous prediction of significantly reduced thermal conductivity of Ag nanoparticles/aggregates. In addition, external DC electrical field enhanced surface-enhanced Raman scattering (SERS) was also observed with the excitation laser light focused in between the electrodes instead of on the electrodes. Various potential were applied and an enhancement factor of 5 has been achieved. Possible explanations for this enhancement are provided.
机译:金属纳米颗粒及其聚集体的电导率和导热率对于涉及纳米材料的许多设备应用很重要。在这项工作中,已测量了金纳米粒子聚集体的电导率,发现它是纳米粒子表面化学的有用探针。已经观察到,溶液中的金纳米颗粒聚集体的电导率随着光照射或热加热而增加,并且在去除光或热时完全恢复到初始值。电导率的变化量取决于热量或光的量。电导率的变化暂时归因于由于加热或光照导致离子从纳米颗粒表面离解。同时,已测量干燥的银纳米颗粒(30-60nm)的热导率,发现其为约2W / m·K。这与先前关于Ag纳米颗粒/聚集体的热导率显着降低的预测一致。此外,还观察到外部直流电场增强的表面增强拉曼散射(SERS),激发激光聚焦在电极之间而不是电极上。应用了各种潜能,并且增强因子达到了5。提供了此增强功能的可能解释。

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