叠氮
光催化
材料科学
氮化碳
纳米尺度
合理设计
共价键
纳米技术
石墨氮化碳
光化学
化学工程
化学
有机化学
催化作用
工程类
作者
Frederik Haase,Tanmay Banerjee,Gökçen Savaşçı,Christian Ochsenfeld,Bettina V. Lotsch
出处
期刊:Faraday Discussions
[The Royal Society of Chemistry]
日期:2017-01-01
卷期号:201: 247-264
被引量:100
摘要
Organic solids such as covalent organic frameworks (COFs), porous polymers and carbon nitrides have garnered attention as a new generation of photocatalysts that offer tunability of their optoelectronic properties both at the molecular level and at the nanoscale. Owing to their inherent porosity and well-ordered nanoscale architectures, COFs are an especially attractive platform for the rational design of new photocatalysts for light-induced hydrogen evolution. In this report, our previous design strategy of altering the nitrogen content in an azine-linked COF platform to tune photocatalytic hydrogen evolution is extended to a pyridine-based photocatalytically active framework, where nitrogen substitution in the peripheral aryl rings reverses the polarity compared to the previously studied materials. We demonstrate how simple changes at the molecular level translate into significant differences in atomic-scale structure, nanoscale morphology and optoelectronic properties, which greatly affect the photocatalytic hydrogen evolution efficiency. In an effort to understand the complex interplay of such factors, we carve out the conformational flexibility of the PTP-COF precursor and the vertical radical anion stabilization energy as important descriptors to understand the performance of the COF photocatalysts.
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