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Control of nanoparticle charge via condensation magnification

机译:通过缩合放大控制纳米粒子电荷

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Previously,we reported a method for preparing highly charged nanoparticles via condensation magnification [Suh,J.,Han,B.,Kim,D.S.,& Choi,M.(2005).A method for enhanced charging of nanoparticles via condensation magnification.Journal of Aerosol Science,36,1183-1193].In the present work,we attempt to control the charge level of nanoparticles by varying the droplet size in the condensation magnification method.We also investigate whether both metallic and dielectric nanoparticles could be highly charged and their charge level can be controlled.Three different cases of 12 and 25 nm gold particles and 22 nm polystyrene polymer(PSP)particles were examined and for all three cases,the number of elementary charges could be successfully controlled by varying droplet sizes.The maximum charges of 12 and 25 nm gold nanoparticles were about 15 and 57 units,respectively,and that of 22 nm polystyrene polymer(PSP)particles was 43 units.Surface electric field strength corresponding to these maximum charges was found to be approximately independent of particle sizes indicating that ion evaporation model could be valid in our charging process.
机译:以前,我们报道了一种通过缩合放大倍数制备高电荷纳米粒子的方法[Suh,J.,Han,B.,Kim,DS,&Choi,M。(2005)。一种通过缩合放大倍数增强纳米粒子带电的方法。 [Aerosol Science,36,1183-1193]。在目前的工作中,我们尝试通过缩合放大方法改变液滴大小来控制纳米粒子的电荷水平。我们还研究了金属纳米粒子和电介质纳米粒子是否都可以带高电和研究了三种不同情况的12和25 nm金粒子和22 nm聚苯乙烯聚合物(PSP)粒子,并且在这三种情况下,可以通过改变液滴大小来成功控制基本电荷的数量。 12和25 nm金纳米粒子的电荷分别约为15和57单位,而22 nm聚苯乙烯聚合物(PSP)粒子的电荷分别为43单位。对应于这些最大焦炭的表面电场强度发现ges几乎与颗粒大小无关,这表明离子蒸发模型在我们的充电过程中可能是有效的。

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