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Related Experiment Video

Updated: May 19, 2026

A Technique to Functionalize and Self-assemble Macroscopic Nanoparticle-ligand Monolayer Films onto Template-free Substrates
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Self-assembled monolayers with dynamicity stemming from (bio)chemical conversions: from construction to application.

Inseong Choi1, Woon-Seok Yeo

  • 1Department of Bioscience and Biotechnology, Konkuk University, Seoul 143-701, Korea.

Chemphyschem : a European Journal of Chemical Physics and Physical Chemistry
|August 3, 2012
PubMed
Summary

Researchers explore switchable surfaces with dynamic properties, focusing on self-assembled monolayers. These surfaces offer tunable properties for applications in microarrays, biomolecule immobilization, and tissue engineering using various stimuli.

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Area of Science:

  • Materials Science
  • Surface Chemistry
  • Biotechnology

Background:

  • Surfaces with tunable properties, termed "dynamicity," are crucial for advanced applications.
  • Switchable surfaces enable modulation of surface characteristics via external stimuli.
  • These dynamic surfaces are increasingly utilized in micro/nanoarrays, biomolecule immobilization, cell studies, and tissue engineering.

Purpose of the Study:

  • To review the dynamic control of surface properties on self-assembled monolayers.
  • To highlight methods for achieving dynamicity through (bio)chemical conversions.
  • To provide insights into the stimuli-responsive nature of these advanced surfaces.

Main Methods:

  • Focus on self-assembled monolayers as a platform for dynamic surfaces.

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Published on: May 9, 2014

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  • Review of (bio)chemical conversion strategies for property modulation.
  • Analysis of external stimuli including electrical potentials, photoillumination, chemical reagents, enzymes, and pH.
  • Main Results:

    • Self-assembled monolayers offer a versatile platform for creating switchable surfaces.
    • Various external stimuli can effectively trigger (bio)chemical conversions to alter surface properties.
    • Dynamic surface properties are demonstrated across diverse material types.

    Conclusions:

    • Dynamic control over surface properties is achievable on self-assembled monolayers.
    • Stimuli-responsive surface modifications are key to advanced material applications.
    • This review consolidates current understanding and future directions in dynamic surface science.