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Immobilizing photogenerated electrons from graphitic carbon nitride for an improved visible-light photocatalytic activity

机译:固定来自石墨氮化碳的光生电子以改善可见光的光催化活性

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摘要

Reducing the recombination probability of photogenerated electrons and holes is pivotal in enhancing the photocatalytic ability of graphitic carbon nitride (g-C3N4). Speeding the departure of photogenerated electrons is the most commonly used method of achieving this. To the best of our knowledge, there is no report on suppressing the recombination of photogenerated electron–hole pairs by immobilizing the electrons with ester functional groups. Here, for the first time the mesoporous g-C3N4 (mpg-C3N4) was integrated with polymethyl methacrylate, a polymer abundant in ester groups, which showed a photocatalytic activity unexpectedly higher than that of the original mpg-C3N4 under visible-light irradiation. Experimental observations, along with theoretical calculations, clarified that the impressive photocatalytic ability of the as-modified mpg-C3N4 was mainly derived from the immobilization of photogenerated electrons via an electron-gripping effect imposed by the ester groups in the polymethyl methacrylate. This novel strategy might also be applied in improving the photocatalytic performance of other semiconductors.
机译:降低光生电子和空穴的复合概率对于增强石墨碳氮化物(g-C3N4)的光催化能力至关重要。加速光生电子的离开是实现这一目标的最常用方法。据我们所知,尚无关于通过将电子与酯官能团固定化来抑制光生电子-空穴对重组的报道。在此,中孔g-C3N4(mpg-C3N4)首次与聚甲基丙烯酸甲酯(一种富含酯基的聚合物)结合在一起,在可见光照射下其光催化活性出乎意料地高于原始的mpg-C3N4。实验观察以及理论计算表明,改性的mpg-C3N4令人印象深刻的光催化能力主要来自聚甲基丙烯酸甲酯中的酯基施加的电子吸附作用,将光生电子固定化。这种新颖的策略也可用于改善其他半导体的光催化性能。

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