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Multiple Doped Carbon Nitrides with Accelerated Interfacial Charge/Mass Transportation for Boosting Photocatalytic Hydrogen Evolution

机译:具有加速界面电荷/质量运输的多掺杂碳氮化合物,用于升压光催化氢气

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The interaction of water molecule with catalysts is crucial to photocatalysis, but the surface property manipulation still remains a great challenge. In this study, we report an in situ multiple heteroelement (sodium, oxygen, and iodide) doping strategy based on a molten salt-assisted route to prepare a green-colored carbon nitride (GCN). The as-prepared GCN yields 25.5 times higher H-2 evolution rate than that of bulk polymeric carbon nitride under visible light. Experimental characterization data demonstrate that the GCN delivers upshift of the conduction band and increased specific surface area and hydrophilicity. As confirmed by time-resolved PL spectra, DMPO spin-trapping EPR analysis, and so on, the excellent activity is dominantly ascribed to the greatly enhanced hydrophilicity and, subsequently, efficient interfacial charge transfer and hydrogen liberation. Moreover, through surface charge modification, the GCN also shows an increased degradation activity of rhodamine B. This work highlights the importance of surface modulation through multiple earth abundant element incorporation for designing of advanced and practical photocatalysts.
机译:水分子与催化剂的相互作用对光催化是至关重要的,但表面性能操作仍然是一个巨大的挑战。在本研究中,我们在熔融盐辅助途径上报告原位多种杂种(钠,氧和碘化物)掺杂策略以制备绿色氮化物(GCN)。 H-2的AS制备的GCN高于可见光下的块状聚合物氮化物的H-2演化率高的25.5倍。实验表征数据表明,GCN提供导带和增加的比表面积和亲水性。如通过时间分辨的PL光谱所证实,DMPO旋转捕获EPR分析,等等,优异的活性主要归因于大大提高的亲水性,随后,有效的界面电荷转移和氢释放。此外,通过表面电荷改性,GCN还显示出罗丹明B的增加的降解活性。这项工作突出了通过多个地球丰富元素掺入来设计表面调制的重要性,用于设计先进和实用的光催化剂。

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