Jedrasik Piotr, Vlad Alexandru, Södervall Ulf
Department of Microtechnology and Nanosciences MC2, Chalmers University of Technology, SE-412 96 Göteborg, Sweden.
J Nanosci Nanotechnol. 2011 Oct;11(10):8924-35. doi: 10.1166/jnn.2011.3475.
In this manuscript we report on a newly developed technology for the nanoscale processing of the conducting polyaniline (PANI) with an unprecedented areal patterning order and density control exceeding 0.25 teradot/inch2. High resolution electron beam lithography was used to generate ordered 2D and 3D templates. A novel type of resist and dose-modulated 3D-electron beam lithography (RDM-3D-EBL), extensively exploiting the intrinsic properties of resist-electron beam interaction is detailed. Surface initiated and template confined aniline polymerization, through catalytic activity of metallic platinum, was then exploited to provide a genuine method for controlled nanoscale processing of polyaniline, a prototypical conjugated polymer that definitively settled the concept of synthetic metals. Using nanoscale polymerization reactors, ultimate resolution patterning and processing control of single polyaniline nanostructures was feasible. Aspects of the nanoscale polyaniline growth mechanism are discussed and the highly controllable, sub-picogram scale fabrication is emphasized. Near teradot/inch2 pattern transfer technology, complex 3D structuring and physico-chemical functionalization of polyaniline can be subsequently harnessed to build a large variety of architectures with potential for emerging optoelectronic technologies. The method is scalable, can be applied on virtually any type of flexible or rigid substrates and provides a generic approach for nanopatterning surfaces with functional polymers. Technological and material related fabrication challenges are detailed and discussed.
在本论文中,我们报道了一种新开发的技术,用于对导电聚苯胺(PANI)进行纳米级加工,其具有前所未有的面内图案化有序性和密度控制,超过0.25太拉点/英寸²。使用高分辨率电子束光刻技术生成有序的二维和三维模板。详细介绍了一种新型抗蚀剂和剂量调制三维电子束光刻(RDM - 3D - EBL),该技术充分利用了抗蚀剂与电子束相互作用的固有特性。然后利用金属铂的催化活性,通过表面引发和模板受限的苯胺聚合反应,提供了一种用于聚苯胺可控纳米级加工的真正方法,聚苯胺是一种典型的共轭聚合物,明确确立了合成金属的概念。使用纳米级聚合反应器,可以实现单个聚苯胺纳米结构的极限分辨率图案化和加工控制。讨论了纳米级聚苯胺生长机制的各个方面,并强调了高度可控的亚皮克级制造。随后,可以利用近太拉点/英寸²的图案转移技术、聚苯胺的复杂三维结构化和物理化学功能化,构建具有新兴光电子技术潜力的各种架构。该方法具有可扩展性,几乎可以应用于任何类型的柔性或刚性基板,并为用功能聚合物对表面进行纳米图案化提供了一种通用方法。详细阐述并讨论了与技术和材料相关的制造挑战。