Department of Physics and INFM CRS-SOFT, La Sapienza University of Rome, Piazzale A. Moro 5, I-00185-Rome, Italy.
Langmuir. 2011 Jun 7;27(11):7084-90. doi: 10.1021/la2007827. Epub 2011 May 12.
The radiowave dielectric properties of organothiol monolayer-protected Au and Ag metallic nanoparticles have been investigated in the frequency range of 10 kHz to 2 GHz, where a dielectric relaxation, due to the polarization of the ionic atmosphere at the aqueous interface, occurs. The simultaneous measurement of the particle size, by means of dynamic light scattering technique, and of the particle electrical charge, by means of laser microelectrophoresis technique, allow us to describe the whole dielectric behavior at the light of the standard electrokinetic model for charged colloidal particles. Au and Ag metallic nanoparticles experience a large charge renormalization, in agreement with the counterion condensation effect for charged spherical colloidal particles. The value of the effective valence Z(eff) of each nanoparticle investigated has been evaluated thanks to the dielectric parameters of the observed relaxation process and further confirmed by direct current electrical conductivity measurements. All in all, these results provide support for the characterization of the electrical interfacial properties of metallic nanoparticles by means of dielectric relaxation measurements.
已经在 10 kHz 至 2 GHz 的频率范围内研究了有机硫醇单层保护的 Au 和 Ag 金属纳米粒子的无线电波介电特性,其中由于水界面处离子气氛的极化而发生介电弛豫。通过动态光散射技术同时测量颗粒尺寸,并通过激光微电泳技术测量颗粒电荷,使我们能够根据带电胶体颗粒的标准电动模型来描述整个介电行为。Au 和 Ag 金属纳米粒子经历了很大的电荷重整化,这与带电球形胶体颗粒的抗衡离子凝聚效应一致。通过观察到的弛豫过程的介电参数评估了所研究的每个纳米粒子的有效价 Z(eff)的值,并通过直流电导率测量进一步证实。总而言之,这些结果为通过介电弛豫测量来表征金属纳米粒子的电界面特性提供了支持。