Department of Materials Engineering, Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev, Beer-Sheva, 84105, Israel.
Soft Matter. 2019 Apr 7;15(13):2897-2904. doi: 10.1039/c8sm02590h. Epub 2019 Mar 8.
Nanoimprinting with rigid molds offers almost unlimited pattern resolution, but it suffers from high sensitivity to defects, and is limited to pattering flat surfaces. These limitations can be addressed by nanoimprinting with soft molds. However, soft molds have been used so far with UV resists, and could not achieve a resolution and minimal feature size comparable to those of rigid molds. Here, we explore the miniaturization edge of soft nanoimprint molds, and demonstrate their compatibility with thermal imprint resists. To that end, we produced a pattern with 10 nm critical dimensions, using electron beam lithography, and used it to replicate nanoimprint molds by direct casting of an elastomer onto the patterned resist. We showed that the produced pattern can be faithfully transferred from the mold by thermal nanoimprinting. In addition, we showed that similar nanoimprint molds can also be produced by double replication, which includes nanoimprinting of a thermal resist with an ultrahigh resolution rigid mold, and replication of a soft mold from the imprint pattern. We also demonstrated our novel nanoimprinting approach in two unconventional applications: nanopatterning of a thermal resist on a lens surface, and direct nanoimprinting of chalcogenide glass. Our novel nanoimprint approach pushes the envelope of standard nanofabrication, and demonstrates its potential for numerous applications impossible up to now.
利用刚性模具进行纳米压印可以提供几乎无限的图案分辨率,但它对缺陷非常敏感,并且仅限于对平面进行图案化。这些限制可以通过软模具的纳米压印来解决。然而,到目前为止,软模具一直与 UV 抗蚀剂一起使用,并且无法实现与刚性模具相当的分辨率和最小特征尺寸。在这里,我们探索了软纳米压印模具的小型化边缘,并展示了它们与热压印抗蚀剂的兼容性。为此,我们使用电子束光刻制作了具有 10nm 临界尺寸的图案,并使用它通过将弹性体直接浇铸到图案化的抗蚀剂上来复制纳米压印模具。我们表明,可以通过热纳米压印从模具中忠实地转移出所产生的图案。此外,我们还表明,类似的纳米压印模具也可以通过双重复制来制造,其中包括使用超高分辨率刚性模具对热抗蚀剂进行纳米压印,以及从压印图案复制软模具。我们还在两个非传统应用中展示了我们的新型纳米压印方法:在透镜表面上对热抗蚀剂进行纳米图案化,以及直接对硫属玻璃进行纳米压印。我们的新型纳米压印方法推动了标准纳米制造的极限,并展示了其在迄今为止不可能实现的许多应用中的潜力。