Enabling Solution Processable COFs through Suppression of Precipitation during Solvothermal Synthesis

Safiya Khalil, Matthew D. Meyer, Abdullah Alazmi, Mohammad H.K. Samani, Po Chun Huang, Morgan Barnes, Amanda B. Marciel, Rafael Verduzco

Research output: Contribution to journalArticlepeer-review

Abstract

Covalent organic frameworks (COFs) are crystalline, nanoporous materials of interest for various applications, but current COF synthetic routes lead to insoluble aggregates which precludes processing for practical implementation. Here, we report a COF synthesis method that produces a stable, homogeneous suspension of crystalline COF nanoparticles that enables the preparation of COF monoliths, membranes, and films using conventional solution-processing techniques. Our approach involves the use of a polar solvent, diacid catalyst, and slow reagent mixing procedure at elevated temperatures which altogether enable access to crystalline COF nanoparticle suspension that does not aggregate or precipitate when kept at elevated temperatures. On cooling, the suspension undergoes a thermoreversible gelation transition to produce crystalline and highly porous COF materials. We further show that the modified synthesis approach is compatible with various COF chemistries, including both large- and small-pore imine COFs, hydrazone-linked COFs, and COFs with rhombic and hexagonal topologies, and in each case, we demonstrate that the final product has excellent crystallinity and porosity. The final materials contain both micro- and macropores, and the total porosity can be tuned through variation of sample annealing. Dynamic light scattering measurements reveal the presence of COF nanoparticles that grow with time at room temperature, transitioning from a homogeneous suspension to a gel. Finally, we prepare imine COF membranes and measure their rejection of polyethylene glycol (PEG) polymers and oligomers, and these measurements exhibit size-dependent rejection and adsorption of PEG solutes. This work demonstrates a versatile processing strategy to create crystalline and porous COF materials using solution-processing techniques and will greatly advance the development of COFs for various applications.

Original languageEnglish (US)
Pages (from-to)20964-20974
Number of pages11
JournalACS nano
Volume16
Issue number12
DOIs
StatePublished - Dec 27 2022

Keywords

  • colloidal nanoparticles
  • covalent organic frameworks
  • films
  • membranes
  • monoliths
  • processing

ASJC Scopus subject areas

  • General Materials Science
  • General Engineering
  • General Physics and Astronomy

Fingerprint

Dive into the research topics of 'Enabling Solution Processable COFs through Suppression of Precipitation during Solvothermal Synthesis'. Together they form a unique fingerprint.

Cite this