Kraus Tobias, Malaquin Laurent, Schmid Heinz, Riess Walter, Spencer Nicholas D, Wolf Heiko
IBM Research GmbH, Zurich Research Laboratory, Säumerstrasse 4, 8803 Rüschlikon, Switzerland.
Nat Nanotechnol. 2007 Sep;2(9):570-6. doi: 10.1038/nnano.2007.262. Epub 2007 Sep 2.
Bulk syntheses of colloids efficiently produce nanoparticles with unique and useful properties. Their integration onto surfaces is a prerequisite for exploiting these properties in practice. Ideally, the integration would be compatible with a variety of surfaces and particles, while also enabling the fabrication of large areas and arbitrarily high-accuracy patterns. Whereas printing routinely meets these demands at larger length scales, we have developed a novel printing process that enables positioning of sub-100-nm particles individually with high placement accuracy. A colloidal suspension is inked directly onto printing plates, whose wetting properties and geometry ensure that the nanoparticles only fill predefined topographical features. The dry particle assembly is subsequently printed from the plate onto plain substrates through tailored adhesion. We demonstrate that the process can create a variety of particle arrangements including lines, arrays and bitmaps, while preserving the catalytic and optical activity of the individual nanoparticles.
胶体的批量合成能够高效地生产出具有独特且有用特性的纳米颗粒。将它们整合到表面是在实际应用中利用这些特性的前提条件。理想情况下,这种整合应与各种表面和颗粒兼容,同时还能实现大面积和任意高精度图案的制造。虽然印刷在较大长度尺度上通常能满足这些要求,但我们开发了一种新颖的印刷工艺,能够以高放置精度逐个定位尺寸小于100纳米的颗粒。将胶体悬浮液直接涂覆在印刷板上,印刷板的润湿特性和几何形状确保纳米颗粒仅填充预定义的地形特征。随后,通过定制的粘附力将干燥的颗粒组件从印刷板印刷到普通基板上。我们证明,该工艺可以创建包括线条、阵列和位图在内的各种颗粒排列,同时保留单个纳米颗粒的催化和光学活性。