Phosphorothioate-Cored Organic Membrane as a Heterogeneous Dip Catalyst for Hydrogen-Bonding-Assisted Covalent Organic Framework Synthesis

催化作用 化学工程 共价键 化学 多相催化 金属有机骨架 材料科学 高分子化学 有机溶剂 聚合物 共价有机骨架 聚合膜 浸涂 有机聚合物 有机化学 无机化学 纳米技术 有机合成
作者
Adithyan Puthukkudi,Biswajit Sahoo,Dipansu D. Behera,Lichita Patro,B. L. Bhargava,Bishnu P. Biswal
出处
期刊:Chemistry of Materials [American Chemical Society]
标识
DOI:10.1021/acs.chemmater.6c00833
摘要

Covalent organic frameworks (COFs) are typically catalyzed by acid or base to maintain reversibility during dynamic covalent bond formation. However, the concept of recyclable and linkage-general heterogeneous catalytic systems for COF synthesis seems interesting and has not yet been demonstrated. On this line, we introduce an intrinsic heterogeneous membrane-based “dip-catalyst” for COF synthesis. Wherein a free-standing, interfacially fabricated Schiff-base membrane (TAP–DTP) directly mediates COF formation with good yield. The membrane incorporates a phosphorothioate functionality that promotes a hydrogen-bond-assisted catalytic pathway, which facilitates condensation reactions while preserving the dynamic character required for error correction. Remarkably, this single catalytic platform supports the formation of structurally diverse COFs, including imine-, β-ketoenamine-, and imide linkages, and can be readily retrieved and reused without measurable loss of activity. Control experiments with a phosphorothioate-free analogue confirm the decisive role of the P═S motif, while density functional theory (DFT) calculations substantiate the origin of this catalytic effect. The optimized structures reveal strong hydrogen-bonding interactions between the catalytic core and the amine and carboxylic acid hydrogens (H···S = 2.76 and 2.34 Å), while the aldehyde interaction is weaker (3.09 Å), indicating that the amine and carboxylic acid components primarily facilitate the slow formation of COF. This work establishes a new paradigm in which a heterogeneous, recyclable dip catalyst serves as an alternative to conventional homogeneous systems for COF synthesis, and may be extended to broader organic transformations in the future.
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