Sep 2026· Journal of the American Chemical Society· Vol 148, pp. 41250-41259· 0 citations· 53 references
Abstract
Woven covalent organic frameworks (woven COFs) represent a rare class of mechanically interlaced crystalline polymers whose synthesis is largely limited by the availability of suitable linkage chemistry. Herein, we report the first example of a vinylene-linked woven covalent organic framework, constructed through a Knoevenagel-type condensation between a Cu(I)-coordinated neocuproine node (Cu(DmPhen)2) and an extended aromatic dialdehyde linker under melt-polymerization conditions. The incorporation of a rigid copper-phenanthroline node and an elongated terphenyl-based aldehyde promotes framework interlocking, enabling the formation of a crystalline woven architecture featuring robust C═C linkages and permanent porosity. The resulting Cu-TPy COF exhibits a long-range periodicity, extended π-conjugation, and remarkable chemical stability. Owing to the synergistic combination of accessible copper centers and an ordered conjugated framework, Cu-TPy exhibits outstanding electrocatalytic activity for the oxygen reduction reaction (ORR) even in the absence of conductive additives, maintaining stable performance for more than 2 days of continuous operation. This work demonstrates the successful incorporation of vinylene linkages into the woven framework, thereby extending the conjugation pathway and broadening the structural diversity of woven porous materials.
Vinylene-linked covalent organic frameworks (COFs) have attracted significant attention for their exceptional chemical stability and optoelectronic properties. However, the large-scale synthesis of vinylene-linked COFs remains challenging, as base- or acid-mediated solvothermal methods often result in uncontrolled crys...
Harshal E. Patil, Chowdhury Ismat Nurani, Monojit Roy et al.· Nanoscale· 0 citations
Vinylene-linked covalent organic frameworks (COFs) are robust crystalline porous materials with high thermal stability and extended π-conjugation, but their pore-wall functionalization remains challenging because many functional groups are incompatible with the basic conditions required for Knoevenagel polymerization....
Herein, a hydrazone-linked covalent organic framework (TFPB-OD) was constructed using 1,3,5-tris(4-formylphenyl)benzene (TFPB) and oxalyldihydrazide (OD) monomeric units. Co(II) was embedded via post-synthetic modification, yielding a well-coordinated, nitrogen- and oxygen-rich porous framework, Co(II)-TFPB-OD, for the...
Covalent organic frameworks (COFs) are a class of crystalline porous materials assembled from discrete molecular building blocks, offering exceptional tunability and functionality that underpin their broad range of applications. However, conventional solvothermal routes for COF synthesis often rely on toxic organic sol...
Seyyed Emad Hooshmand, Darosch Asgari, Xin-Le Li et al.· Materials Horizons· 0 citations
The development of efficient, stable, and low-cost electrocatalysts for oxygen evolution reaction (OER) is essential for advancing alkaline water electrolysis and rechargeable metal air batteries. Metal–organic frameworks (MOFs), owing to their modular design and structural versatility, offer a unique platform for engi...
A simple one-step route for designing three covalently bonded porous organosilica polymers via tandem condensation, bearing an adjustable triazine moiety and N–Si cooperative microenvironments, has been reported for the first time. In contrast to the traditional methods that rely on prefabricated supports or postsynt...
D. Chakraborty, Sumanta Mondal, Soumik Paul et al.· Chemistry of Materials· 0 citations
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