Université de Toulouse, LPCNO, INSA-CNRS-UPS, 135 Avenue de Rangueil, 31077 Toulouse, France.
ACS Nano. 2011 May 24;5(5):4228-35. doi: 10.1021/nn2011893. Epub 2011 May 2.
We present a simple protocol to obtain versatile assemblies of nanoparticles from aqueous dispersions onto charge patterns written by atomic force microscopy, on a 100 nm thin film of polymethylmethacrylate spin-coated on silicon wafers. This protocol of nanoxerography uses a two-stage development involving incubation of the desired aqueous colloidal dispersion on charge patterns and subsequent immersion in an adequate water-soluble alcohol. The whole process takes only a few minutes. Numerical simulations of the evolution of the electric field generated by charge patterns in various solvents are done to resolve the mechanism by which nanoparticle assembly occurs. The generic nature of this protocol is demonstrated by constructing various assemblies of charged organic/inorganic/metallic (latex, silica, gold) nanoparticles of different sizes (3 to 100 nm) and surface functionalities from aqueous dispersions onto charge patterns of complex geometries. We also demonstrate that it is possible to construct a binary assembly of nanoparticles on a pattern made of positive and negative charges generated in a single charge writing step, by sequential developments in two aqueous dispersions of oppositely charged particles. This protocol literally extends the spectra of eligible colloids that can be assembled by nanoxerography and paves the way for building complex assemblies of nanoparticles on predefined areas of surfaces, which could be useful for the elaboration of nanoparticle-based functional devices.
我们提出了一种简单的方案,可将水溶液中的纳米粒子组装成各种花样,方法是将原子力显微镜写入的电荷图案应用于涂覆在硅片上的聚甲基丙烯酸甲酯薄膜上。这种纳米影印技术使用两步显影方法,先将所需的水基胶体分散液孵育在电荷图案上,然后将其浸入适当的水溶性醇中。整个过程只需几分钟。通过对各种溶剂中电荷图案产生的电场的数值模拟,解决了纳米粒子组装发生的机制问题。该方案具有通用性,可从水溶液中组装不同尺寸(3 至 100nm)和表面功能的带电有机/无机/金属(乳胶、二氧化硅、金)纳米粒子,构建各种复杂几何形状的电荷图案的纳米粒子组装体。我们还证明,通过在单个电荷写入步骤中生成的正、负电荷图案上进行两种带相反电荷的粒子的顺序显影,可在图案上构建纳米粒子的二进制组装体。这种方案从字面上扩展了可通过纳米影印技术组装的合格胶体的范围,并为在表面的预定区域上构建纳米粒子的复杂组装体铺平了道路,这可能对基于纳米粒子的功能器件的开发有用。