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Cercosporin-Photocatalyzed [4+1]- and [4+2]-Annulations of Azoalkenes Under Mild Conditions
Published on: July 17, 2020
Continuous π-Conjugation in β-Ketoenamine Covalent Organic Frameworks Boosts Charge Transfer for Selective
Kanghui Xiong1, Tongtong Jia2, Keke Zhang1
1Hubei Key Lab on Organic and Polymeric Optoelectronic Materials, College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, China.
Abstract:
Alkynyl groups in the backbones of covalent organic frameworks (COFs) enable continuous π-conjugation, thereby unlocking enhanced visible light photocatalysis. Starting from TpBD-COF, the incorporation of acetylene and diacetylene into the linker yields two β-ketoenamine COFs, TpEDD-COF and TpBDD-COF, respectively. Accordingly, the greater planarity of TpEDD-COF and TpBDD-COF relative to TpBD-COF significantly amplifies π-electron delocalization across the COFs, as confirmed by density functional theory (DFT) calculations. Experimental measurements, corroborated by time-dependent DFT calculations, confirm the order of optoelectronic properties: TpBDD-COF > TpEDD-COF > TpBD-COF. Thus, the optoelectronic properties underpin the visible light photocatalysis: oxygen is activated, which in turn drives the selective oxidation of amines. Compared with TpBD-COF, the continuous π-conjugation in TpEDD-COF and TpBDD-COF boosts charge transfer. In the selective oxidation of benzylamines with oxygen, under 460 nm light irradiation, TpBDD-COF photocatalysis achieves twice the conversion of TpEDD-COF and four times that of TpBD-COF. Mechanistic studies reveal that in TpBDD-COF photocatalysis, superoxide radical anion serves as the predominant reactive oxygen species for imine formation. This work highlights that continuous π-conjugation of COFs offers a viable handle for enhanced selective photocatalysis.
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