nMat group, CEMES-CNRS UPR 8011 et Université de Toulouse, 29 rue Jeanne Marvig, Toulouse, France.
Nanotechnology. 2013 Feb 22;24(7):075302. doi: 10.1088/0957-4484/24/7/075302. Epub 2013 Jan 28.
Nanofabrication of buried structures with dimensions below 5 nm and with controlled 3D-positioning at the nanoscale was attempted to open new routes to future nanodevices where single nanostructures could be systematically interfaced. A typical example is ultralow-energy ion beam synthesis where already the depth positioning of embedded arrays of silicon nanocrystals can be finely controlled with nanometric precision. In this study, we investigated for the first time the control of the in-plane organization of the nanocrystals using a legitimate patterning option for microelectronic industries, self-assembled block-copolymer. The compatibility with the ultralow-energy ion beam synthesis process of polymeric nanoporous films used as mask was demonstrated together with the capability to control in 3D the organization of Si nanocrystals. The resulting nano-organization consists in a hexagonal array of 20 nm wide nanovolumes containing on average 8 nanocrystals embedded at a controlled depth within a silica matrix.
尝试采用纳米制造技术来制造尺寸小于 5nm 的埋入式结构,并实现纳米级别的三维定位,以开辟新的途径来制造未来的纳米器件,在这些器件中可以系统地连接单个纳米结构。超低碳离子束合成就是一个典型的例子,通过该技术,已经可以精细地控制嵌入硅纳米晶体阵列的深度定位,精度达到纳米级。在这项研究中,我们首次使用微电子工业中合法的图案化选项,即自组装嵌段共聚物,来控制纳米晶体的面内组织。研究还证明,聚合物纳米多孔膜作为掩模,与超低碳离子束合成工艺具有兼容性,并且可以在三维空间中控制硅纳米晶体的组织。所得到的纳米结构由 20nm 宽的纳米体积的六边形阵列组成,每个纳米体积平均包含 8 个纳米晶体,这些晶体被嵌入在二氧化硅基质中,深度可以得到精确控制。