Visible-light-induced photocatalytic oxidation of C–H bonds with O2 employing simple porphyrins as photocatalysts under solvent-free conditions

IF 4.9
Yan-Bo Ding, Yi-Lin Chu, Qiu-Ping Liu, Hong-Ke Wu, Hai-Min Shen and Yuan-Bin She
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Abstract

To insert oxygen atoms into C–H bonds through efficient and green process with lower energy consumption and lower carbon emission, porphyrins and metalloporphyrins as model compounds of chlorophyll were utilized as photocatalysts and applied to the oxidation of C–H bonds with O2 under irradiation of visible light at room temperature and solvent-free conditions. The generation efficiency of oxygen-containing products reached up to the millimolar level (mmol (gcat.−1 h−1)) with excellent substrate tolerance. In cyclohexane oxidation as the model reaction, substrate conversion reached up to 3.18 mmol (gcat.−1 h−1) with a selectivity of 99.9% towards cyclohexyl hydroperoxide, utilizing optimized tetrakis(4-carboxyphenyl)porphyrin (T(4-COOH)PP) as the photocatalyst. Based on characterization studies of UV-vis absorption spectroscopy, photoluminescence emission spectroscopy, time-resolved photoluminescence spectroscopy, transient photocurrent spectroscopy and electrochemical impedance spectroscopy, the source of excellent catalytic performance of T(4-COOH)PP was investigated, and it was ascribed to its higher performance in visible-light absorption, charge separation, production of photo-generated electrons, and lower impedance during charge migration under irradiation of visible light. The reactive species and reaction mechanism in this work were investigated in detail as well. The production efficiency of oxidation products at the millimolar level (mmol (gcat.−1 h−1)) was higher than most of the reports in current literature. Thus, the oxidation method developed in this work was an efficient, sustainable and low-energy consumption strategy for oxidative functionalization of C–H bonds and would be a valuable reference for the development of an efficient, sustainable, low-energy consumption and low-carbon emission chemical process.

Abstract Image

在无溶剂条件下,以简单卟啉为光催化剂的可见光诱导氧化C-H键
为了将氧原子插入到C-H键中,实现低能耗、低碳排放的高效绿色过程,以叶绿素的模式化合物卟啉和金属卟啉为光催化剂,在室温和无溶剂条件下,在可见光照射下与O2氧化C-H键。含氧产物的生成效率可达毫摩尔级(mmol (gcat))。−1h−1)),具有良好的底物耐受性。以环己烷氧化为模型反应,底物转化率可达3.18 mmol (gcat)。−1 h−1)对环己基过氧化氢的选择性为99.9%,利用优化后的四烷基(4-羧基苯基)卟啉(T(4-COOH)PP)作为光催化剂。基于紫外-可见吸收光谱、光致发光发射光谱、时间分辨光致发光光谱、瞬态光电流光谱和电化学阻抗光谱的表征研究,探讨了T(4-COOH)PP优异催化性能的来源,并将其归因于其在可见光吸收、电荷分离、产生光生电子、并且在可见光照射下电荷迁移时阻抗较低。并对反应的种类和反应机理进行了详细的研究。毫摩尔级氧化产物的生产效率(mmol (gcat))。−1 h−1))高于目前文献中大多数报道。因此,本研究开发的氧化方法是一种高效、可持续、低能耗的C-H键氧化功能化策略,对开发高效、可持续、低能耗、低碳排放的化工工艺具有重要的参考价值。
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