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尖端诱导超薄聚合物刷的纳米图案化

Tip-Induced Nanopatterning of Ultrathin Polymer Brushes.

作者信息

Gröger Roland, Heiler Tobias, Schimmel Thomas, Walheim Stefan

机构信息

Institute of Applied Physics (APH), Karlsruhe Institute of Technology, Wolfgang-Gaede-Str. 1, D-76131, Karlsruhe, Germany.

Center for Single-Atom Technologies (C.SAT), Karlsruhe Institute of Technology, Strasse am Forum 7, D-76131, Karlsruhe, Germany.

出版信息

Small. 2023 Jul;19(29):e2204962. doi: 10.1002/smll.202204962. Epub 2023 Apr 7.

Abstract

Patterned, ultra-thin surface layers can serve as templates for positioning nanoparticlesor targeted self-assembly of molecular structures, for example, block-copolymers. This work investigates the high-resolution, atomic force microscopebased patterning of 2 nm thick vinyl-terminated polystyrene brush layers and evaluates the line broadening due to tip degradation. This work compares the patterning properties with those of a silane-based fluorinated self-assembled monolayer (SAM), using molecular heteropatterns generated by modified polymer blend lithography (brush/SAM-PBL). Stable line widths of 20 nm (FWHM) over lengths of over 20000 µm indicate greatly reduced tip wear, compared to expectations on uncoated SiO surfaces. The polymer brush acts as a molecularly thin lubricating layer, thus enabling a 5000 fold increase in tip lifetime, and the brush is bonded weakly enough that it can be removed with surgical accuracy. On traditionally used SAMs, either the tip wear is very high or the molecules are not completely removed. Polymer Phase Amplified Brush Editing is presented, which uses directed self-assembly to amplify the aspect ratio of the molecular structures by a factor of 4. The structures thus amplified allow transfer into silicon/metal heterostructures, fabricating 30 nm deep, all-silicon diffraction gratings that could withstand focused high-power 405 nm laser irradiation.

摘要

有图案的超薄表面层可作为纳米颗粒定位或分子结构(如嵌段共聚物)靶向自组装的模板。这项工作研究了基于高分辨率原子力显微镜对2纳米厚的乙烯基封端聚苯乙烯刷层进行图案化,并评估了由于探针降解导致的线宽展宽。这项工作使用通过改性聚合物共混光刻(刷/自组装单分子层-聚合物共混光刻)生成的分子异质图案,将图案化特性与基于硅烷的氟化自组装单分子层(SAM)的图案化特性进行了比较。与在未涂层的SiO表面上的预期相比,在超过20000微米的长度上稳定线宽为20纳米(半高宽)表明探针磨损大大降低。聚合物刷充当分子级薄的润滑层,从而使探针寿命提高5000倍,并且刷的结合足够弱,可以以手术精度去除。在传统使用的自组装单分子层上,要么探针磨损非常高,要么分子不能完全去除。本文介绍了聚合物相放大刷编辑,它使用定向自组装将分子结构的纵横比放大4倍。如此放大的结构允许转移到硅/金属异质结构中,制造出可承受聚焦高功率405纳米激光照射的30纳米深的全硅衍射光栅。

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