Neouze Marie-Alexandra, Litschauer Marco, Puchberger Michael, Bernardi Johannes
Institute of Materials Chemistry, Vienna University of Technology, Vienna, Austria.
Transmission Electron Microscopy Centre, USTEM, Vienna University of Technology, Vienna, Austria.
Monatsh Chem. 2012;143(4):519-525. doi: 10.1007/s00706-011-0709-x. Epub 2012 Jan 21.
A newly arising challenge in the field of nanoparticle research concerns the control and the understanding of the interparticle interactions and interparticle properties. This should allow the development of materials based on nanoparticle assemblies which represents a great opportunity to exploit nanoparticle collective properties. Although some nanoparticle networks have been reported, few works are addressing the highly exciting problem of forming bis-nanoparticle assemblies in which two different types of nanoparticles are present. In this article we report an original synthesis pathway for the formation of an ionic bis-nanoparticle network, silica/silver, based on the formation of an imidazolium bridging unit. The reaction used for the formation of the bridging imidazolium can be considered as click-like chemistry. The synthesis of the metal/metal oxide hybrid composite material starts from the formation of a metal oxide nanoparticle modified with an imidazole ligand. This composite formation is therefore very general and could be extended to other metal/metal oxide composites.
纳米颗粒研究领域中一个新出现的挑战涉及颗粒间相互作用和颗粒间性质的控制与理解。这将有助于开发基于纳米颗粒组装体的材料,这为利用纳米颗粒的集体性质提供了巨大机遇。尽管已经报道了一些纳米颗粒网络,但很少有研究涉及形成包含两种不同类型纳米颗粒的双纳米颗粒组装体这一极具吸引力的问题。在本文中,我们报道了一种基于咪唑鎓桥联单元形成的离子型双纳米颗粒网络(二氧化硅/银)的原创合成途径。用于形成桥联咪唑鎓的反应可被视为类点击化学。金属/金属氧化物杂化复合材料的合成始于用咪唑配体修饰的金属氧化物纳米颗粒的形成。因此,这种复合材料的形成非常普遍,并且可以扩展到其他金属/金属氧化物复合材料。