Lenggoro I Wuled, Lee Hye Moon, Okuyama Kikuo
Department of Chemical Engineering, Graduate School of Engineering, Hiroshima University, Higashi-Hiroshima 739-8527, Japan.
J Colloid Interface Sci. 2006 Nov 1;303(1):124-30. doi: 10.1016/j.jcis.2006.07.033. Epub 2006 Jul 25.
Selective deposition of metal (Au) and oxide (SiO2) nanoparticles with a size range of 10-30 nm on patterned silicon-silicon oxide substrate was performed using the electrospray method. Electrical charging characteristics of particles produced by the electrospray and patterned area created by contact charging of the electrical conductor with non- or semi-conductors were investigated. Colloidal droplets were electrosprayed and subsequently dried as individual nanoparticles which then were deposited on substrates, and observed using field emission-scanning electron microscopy. The number of elementary charge units on particles generated by the electrospray was 0.4-148, and patterned area created by contact charging contained sufficient negative charges to attract multiple charged particles. Locations where nanoparticles were (reversibly) deposited depended on voltage polarity applied to the spraying colloidal droplet and the substrate, and the existence of additional ions such as those from a stabilizer.
采用电喷雾法在图案化的硅 - 氧化硅衬底上选择性沉积尺寸范围为10 - 30 nm的金属(金)和氧化物(二氧化硅)纳米颗粒。研究了电喷雾产生的颗粒的充电特性以及电导体与非导体或半导体接触充电产生的图案区域。将胶体液滴进行电喷雾,随后干燥成单个纳米颗粒,然后将其沉积在衬底上,并使用场发射扫描电子显微镜进行观察。电喷雾产生的颗粒上的基本电荷单元数为0.4 - 148,接触充电产生的图案区域包含足够的负电荷以吸引多个带电颗粒。纳米颗粒(可逆地)沉积的位置取决于施加到喷雾胶体液滴和衬底上的电压极性,以及诸如来自稳定剂的额外离子的存在。