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Direct Printing of Ultrathin Block Copolymer Film with Nano-in-Micro Pattern Structures.


ABSTRACT: Nanotransfer printing (nTP) is one of the most promising nanopatterning methods given that it can be used to produce nano-to-micro patterns effectively with functionalities for electronic device applications. However, the nTP process is hindered by several critical obstacles, such as sub-20 nm mold technology, reliable large-area replication, and uniform transfer-printing of functional materials. Here, for the first time, a dual nanopatterning process is demonstrated that creates periodic sub-20 nm structures on the eight-inch wafer by the transfer-printing of patterned ultra-thin (<50 nm) block copolymer (BCP) film onto desired substrates. This study shows how to transfer self-assembled BCP patterns from the Si mold onto rigid and/or flexible substrates through a nanopatterning method of thermally assisted nTP (T-nTP) and directed self-assembly (DSA) of Si-containing BCPs. In particular, the successful microscale patternization of well-ordered sub-20 nm SiOx patterns is systematically presented by controlling the self-assembly conditions of BCP and printing temperature. In addition, various complex pattern geometries of nano-in-micro structures are displayed over a large patterning area by T-nTP, such as angular line, wave line, ring, dot-in-hole, and dot-in-honeycomb structures. This advanced BCP-replicated nanopatterning technology is expected to be widely applicable to nanofabrication of nano-to-micro electronic devices with complex circuits.

SUBMITTER: Park TW 

PROVIDER: S-EPMC10582423 | biostudies-literature | 2023 Oct

REPOSITORIES: biostudies-literature

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Direct Printing of Ultrathin Block Copolymer Film with Nano-in-Micro Pattern Structures.

Park Tae Wan TW   Kang Young Lim YL   Kang Eun Bin EB   Jung Hyunsung H   Lee Seoung-Ki SK   Hwang Geon-Tae GT   Lee Jung Woo JW   Choi Si-Young SY   Nahm Sahn S   Kwon Se-Hun SH   Kim Kwang Ho KH   Park Woon Ik WI  

Advanced science (Weinheim, Baden-Wurttemberg, Germany) 20230821 29


Nanotransfer printing (nTP) is one of the most promising nanopatterning methods given that it can be used to produce nano-to-micro patterns effectively with functionalities for electronic device applications. However, the nTP process is hindered by several critical obstacles, such as sub-20 nm mold technology, reliable large-area replication, and uniform transfer-printing of functional materials. Here, for the first time, a dual nanopatterning process is demonstrated that creates periodic sub-20  ...[more]

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