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Pattern formation of metal-oxide hybrid nanostructures via the self-assembly of di-block copolymer blends

  • Dae Soo Jung
  • , Jiwon Bang
  • , Tae Wan Park
  • , Seung Hyup Lee
  • , Yun Kyung Jung
  • , Myunghwan Byun
  • , Young Rae Cho
  • , Kwang Ho Kim*
  • , Gi Hun Seong
  • , Woon Ik Park
  • *Corresponding author for this work
  • Korea Institute of Ceramic Engineering And Technology
  • Inje University
  • Keimyung University
  • Pusan National University
  • Global Frontier RandD Center for Hybrid Interface Materials (HIM)
  • Hanyang University

Research output: Contribution to journalJournal articlepeer-review

Abstract

The templated self-assembly of block copolymers (BCPs) with a high Flory-Huggins interaction parameter (χ) can effectively create ultrafine, well-ordered nanostructures in the range of 5-30 nm. However, the self-assembled BCP patterns remain limited to possible morphological geometries and materials. Here, we introduce a novel and useful self-assembly method of di-BCP blends capable of generating diverse hybrid nanostructures consisting of oxide and metal materials through the rapid microphase separation of A-B/B-C BCP blends. We successfully obtained various hybridized BCP morphologies which cannot be acquired from a single di-BCP, such as hexagonally arranged hybrid dot and dot-in-hole patterns by controlling the mixing ratios of the solvents with a binary solvent annealing process. Furthermore, we demonstrate how the binary solvent vapor annealing process can provide a wide range of pattern geometries to di-BCP blends, showing a well-defined spontaneous one-to-one accommodation in dot-in-hole nanostructures. Specifically, we show clearly how the self-assembled BCPs can be functionalized via selective reduction and/or an oxidation process, resulting in the excellent positioning of confined silica nanodots into each nanospace of a Pt mesh. These results suggest a new method to achieve the pattern formation of more diverse and complex hybrid nanostructures using various blended BCPs.

Original languageEnglish
Pages (from-to)18559-18567
Number of pages9
JournalNanoscale
Volume11
Issue number40
DOIs
StatePublished - 2019.10.28

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