Downsizing Porphyrin Covalent Organic Framework Particles Using Protected Precursors for Electrocatalytic CO 2 Reduction

卟啉 材料科学 共价键 还原(数学) 电催化剂 光化学 纳米技术 化学工程 无机化学 电化学 有机化学 电极 物理化学 化学 工程类 数学 几何学
作者
Kenichi Endo,Asif Raza,Liang Yao,Samuel Van Gele,Andrés Rodríguez‐Camargo,Hugo A. Vignolo‐González,Lars Grunenberg,Bettina V. Lotsch
出处
期刊:Advanced Materials [Wiley]
卷期号:36 (19): e2313197-e2313197 被引量:75
标识
DOI:10.1002/adma.202313197
摘要

Abstract Covalent organic frameworks (COFs) are promising electrocatalyst platforms owing to their designability, porosity, and stability. Recently, COFs with various chemical structures are developed as efficient electrochemical CO 2 reduction catalysts. However, controlling the morphology of COF catalysts remains a challenge, which can limit their electrocatalytic performance. Especially, while porphyrin COFs show promising catalytic properties, their particle size is mostly large and uncontrolled because of the severe aggregation of crystallites. In this work, a new synthetic methodology for rationally downsized COF catalyst particles is reported, where a tritylated amine is employed as a novel protected precursor for COF synthesis. Trityl protection provides high solubility to a porphyrin precursor, while its deprotection proceeds in situ under typical COF synthesis conditions. Subsequent homogeneous nucleation and colloidal growth yield smaller COF particles than a conventional synthesis, owing to suppressed crystallite aggregation. The downsized COF particles exhibit superior catalytic performance in electrochemical CO 2 reduction, with higher CO production rate and faradaic efficiency compared to conventional COF particles. The improved performance is attributed to the higher contact area with a conductive agent. This study reveals particle size as an important factor for the evaluation of COF electrocatalysts and provides a strategy to control it.
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