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Carbon nitride nanosheet/metal–organic framework nanocomposites with synergistic photocatalytic activities

机译:具有协同光催化活性的氮化碳纳米片/金属-有机骨架纳米复合材料

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摘要

Heterogeneous photocatalysis plays a key role in the implementation of novel sustainable technologies, e.g. CO2 conversion into fuel, H2 production from water or organics degradation. The progress of photocatalysis relies on the development of tuneable photocatalysts and particularly the ability to build nanocomposites exhibiting synergistic properties with reduced electron–hole recombination rates. We report for the first time the in situ synthesis of nanocomposites of carbon nitride nanosheets (CNNSs) and metal–organic frameworks (MOFs) for application as photocatalysts. This approach leads to the ‘nano-scale mixing’ of the components, thereby enabling a greater performance compared to other types of 2D materials/MOF composites typically obtained via physical mixing. The objective is to take advantage of the complementary features of the materials while forming a heterojunction. The structural, chemical, photophysical and electrochemical properties of the nanocomposites are characterized and compared to those of the parent materials and their physical mixture. The nanocomposites retain the high specific surface area and strong visible light absorbance of MIL-100(Fe). The intimate contact between the CNNSs and the MOF particles is found to promote the electron–hole separation significantly due to the formation of a heterojunction. Hence, more efficient photocatalytic dye degradation is achieved over the composites than the physical mixture.
机译:异质光催化在新型可持续技术的实施中起着关键作用,例如CO2转化为燃料,水或有机物降解产生H2。光催化的进展取决于可调节光催化剂的发展,特别是构建具有降低电子-空穴复合速率协同性能的纳米复合材料的能力。我们首次报道了原位合成氮化碳纳米片(CNNSs)和金属有机骨架(MOFs)纳米复合材料作为光催化剂的应用。与通常通过物理混合获得的其他类型的2D材料/ MOF复合材料相比,这种方法可导致组件的“纳米级混合”,从而实现更高的性能。目的是在形成异质结的同时利用材料的互补特征。对纳米复合材料的结构,化学,光物理和电化学特性进行了表征,并与母体材料及其物理混合物进行了比较。纳米复合材料保留了MIL-100(Fe)的高比表面积和强大的可见光吸收率。由于异质结的形成,CNNS和MOF颗粒之间的紧密接触被发现显着促进了电子-空穴的分离。因此,与物理混合物相比,在复合材料上实现了更有效的光催化染料降解。

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