Skip to main navigation Skip to search Skip to main content

Capillary Transfer of Self-Assembled Colloidal Crystals

  • Carlos D. Díaz-Marín
  • , Diane Li
  • , Fernando J. Vázquez-Cosme
  • , Simo Pajovic
  • , Hyeongyun Cha
  • , Youngsup Song
  • , Cameron Kilpatrick
  • , Geoffrey Vaartstra
  • , Chad T. Wilson
  • , Svetlana Boriskina
  • , Evelyn N. Wang
  • Massachusetts Institute of Technology
  • University of Puerto Rico
  • Stanford University

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

Colloidal self-assembly has attracted significant interest in numerous applications including optics, electrochemistry, thermofluidics, and biomolecule templating. To meet the requirements of these applications, numerous fabrication methods have been developed. However, these are limited to narrow ranges of feature sizes, are incompatible with many substrates, and/or have low scalability, significantly limiting the use of colloidal self-assembly. In this work, we study the capillary transfer of colloidal crystals and demonstrate that this approach overcomes these limitations. Enabled by capillary transfer, we fabricate 2D colloidal crystals with nano-to-micro feature sizes spanning 2 orders of magnitude and on typically challenging substrates including those that are hydrophobic, rough, curved, or structured with microchannels. We developed and systemically validated a capillary peeling model, elucidating the underlying transfer physics. Due to its high versatility, good quality, and simplicity, this approach can expand the possibilities of colloidal self-assembly and enhance the performance of applications using colloidal crystals.

Original languageEnglish
Pages (from-to)1888-1896
Number of pages9
JournalNano Letters
Volume23
Issue number5
DOIs
StatePublished - Mar 8 2023

Keywords

  • capillary
  • monolayer
  • opal
  • peeling
  • self-assembly
  • surface
  • transfer

Fingerprint

Dive into the research topics of 'Capillary Transfer of Self-Assembled Colloidal Crystals'. Together they form a unique fingerprint.

Cite this