Nanopatterning by Molecular Self-assembly on Surfaces

Thomas R. Eaton*, David Munoz Torres, Manfred Buck, Marcel Mayor

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

5 Citations (Scopus)

Abstract

The ability to pattern surfaces down to the nanoscale is of increasing importance in nanoscience research. The use of supramolecular chemistry to drive the formation of self-assembled networks allows for a bottom-up approach to achieve nanopatterned surfaces. This short review highlights some of the recent breakthroughs in achieving long-range order in such molecular based systems, complemented with examples from our own work. The tuning of molecular architectures can exert control on the emergent properties and function of molecules at interfaces. In particular the formation of porous honeycomb networks allows the rational design of highly ordered patterned surface domains and the investigation of molecular dynamics, chirality and templating effects on surfaces.

Original languageEnglish
Pages (from-to)222-226
Number of pages5
JournalChimia
Volume67
Issue number4
DOIs
Publication statusPublished - 2013

Keywords

  • H-bonding
  • Self-Assembly
  • STM
  • Supramolecular chemistry
  • Surfaces
  • SUPRAMOLECULAR CHEMISTRY
  • UNDERPOTENTIAL DEPOSITION
  • SINGLE-MOLECULE
  • PI INTERACTIONS
  • NETWORK
  • MONOLAYERS
  • INDUCTION
  • POLYMERS
  • DYNAMICS

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