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首页> 外文期刊>ACS Omega >Structural Engineering of Graphitic Carbon Nitrides for Enhanced Metal-Free PET-RAFT Polymerizations in Heterogeneous and Homogeneous Systems
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Structural Engineering of Graphitic Carbon Nitrides for Enhanced Metal-Free PET-RAFT Polymerizations in Heterogeneous and Homogeneous Systems

机译:用于非均相和均相体系中增强的无金属PET-RAFT聚合的石墨碳氮化物的结构工程

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Developing visible-light-regulated controlled/living radical polymerization techniques for the synthesis of polymers with a predictable molecular weight, spatial and temporal control, and well-defined end-group functionality is being pursued by the macromolecular community worldwide. In this study, a new metal-free photoinduced electron transfer-reversible addition-fragmentation chain transfer (PET-RAFT) polymerization system was developed for controlled macromolecular synthesis in both heterogeneous and homogeneous systems by structural engineering of graphitic carbon nitrides (g-C3N4) to improve the textural, optical, and electronic properties. A heteroatom-mediated synthesis enabled the preparation of g-C3N4 with improved structural properties and increased absorption in the visible light region. Enhanced PET-RAFT polymerization of vinyl monomers with low dispersity (? < 1.2), temporal control, and high chain-end fidelity was achieved under mild blue light irradiation (λmax = 465 nm, 3 mW/cm2). Moreover, we demonstrate, for the first time, that the g-C3N4-catalyzed RAFT polymerization could be realized in a homogeneous system after structural evolution of bulk g-C3N4 into soluble nanosheets with enhanced photocatalytic efficiency up to high monomer conversion. This study provides new insights into the structure–performance relationship of g-C3N4 for photoregulated PET-RAFT polymerization under visible light. Moreover, the development of a homogeneous g-C3N4-catalyzed photosynthesis system should broaden the application scope of these fascinating photocatalysts while benefiting synthetic upscaling by continuous flow and/or microfluidic reactors.
机译:开发大分子的可见光调节的受控/活性自由基聚合技术,以合成具有可预测的分子量,空间和时间控制以及定义明确的端基官能团的聚合物,这是世界范围内的大分子社区所追求的目标。在这项研究中,通过石墨化碳氮化物(g-C3N4)的结构工程,开发了一种新的无金属光致电子转移-可逆加成-断裂链转移(PET-RAFT)聚合体系,可用于均相和均相体系中的受控高分子合成。改善质地,光学和电子性能。杂原子介导的合成使得能够制备具有改善的结构特性和增加的可见光吸收的g-C3N4。在柔和的蓝光照射下(λmax= 465 nm,3 mW / cm2),实现了低分散度(η<1.2),时间控制和高链端保真度的乙烯基单体的增强型PET-RAFT聚合。此外,我们首次证明,在大量g-C3N4结构演化为可溶的纳米片材后,g-C3N4催化的RAFT聚合可以在均相系统中实现,并具有提高的光催化效率,直至高单体转化率。这项研究为在可见光下光调节PET-RAFT聚合的g-C3N4的结构-性能关系提供了新的见解。而且,均相g-C3N4催化的光合作用系统的发展应拓宽这些引人入胜的光催化剂的应用范围,同时有利于通过连续流动和/或微流体反应器进行的合成规模化。

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