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Enhanced photocatalytic activity of ternary Ag_3PO_4/GO/g-C_3N_4 photocatalysts for Rhodamine B degradation under visible light radiation

机译:Ag_3PO_4 / GO / g-C_3N_4三元光催化剂在可见光辐射下对若丹明B降解的增强光催化活性

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Single-component graphitic carbon nitride (g-C3N4) are faced with inadequate visible light absorption and low quantum efficiency arising from the rapid charge recombination, limiting their efficient photocatalytic degradation of organic pollutant under visible light radiation. Here, we demonstrated a ternary photocatalyst composed of Ag3PO4, graphene oxide (GO), and g-C3N4 synthesized by chemical precipitation method, in which Ag3PO4 as the photosensitizer and GO as the cocatalyst that significantly promoted the photocatalytic activity of g-C3N4 for Rhodamine B (RhB) degradation under visible light radiation. The ternary photocatalysts (Ag3PO4/GO/g-C3N4) exhibited enhanced absorption in the visible region and superior photocatalytic activity compared with single-component or binary composite photocatalysts for RhB degradation. The degradation rate toward RhB could reach to 94.8% under visible light irradiation for 50 min, and we found that it was the hole (h(+)), superoxide radical (O-2(center dot-)) and hydroxyl radical (OH center dot) that played a major role in RhB degradation. Meanwhile, the ternary photocatalyst showed enhanced photocatalytic stability attributing the synergistic effect among them, and the possible mechanism for the enhanced photocatalytic activity and stability was carefully discussed. The present work provides a facile development of a g-C3N4-based ternary photocatalyst system for highly improved photocatalytic activity by coupling a small amount of Ag-based photosensitizer and metal-free GO cocatalyst.
机译:单组分石墨碳氮化物(g-C3N4)面临着由于快速电荷重组而导致的可见光吸收不足和量子效率低的问题,从而限制了它们在可见光辐射下对有机污染物的有效光催化降解。在这里,我们展示了通过化学沉淀法合成的由Ag3PO4,氧化石墨烯(GO)和g-C3N4组成的三元光催化剂,其中Ag3PO4作为光敏剂,GO作为助催化剂显着提高了g-C3N4对罗丹明的光催化活性。 B(RhB)在可见光辐射下降解。与用于RhB降解的单组分或二元复合光催化剂相比,三元光催化剂(Ag3PO4 / GO / g-C3N4)在可见光区域表现出增强的吸收性和优异的光催化活性。在可见光照射50 min下,对RhB的降解率可达到94.8%,我们发现它是空穴(h(+)),超氧自由基(O-2(中心点-))和羟基自由基(OH)中心点)在RhB降解中起主要作用。同时,三元光催化剂表现出协同作用,提高了光催化稳定性,并仔细探讨了提高光催化活性和稳定性的可能机理。本工作提供了一种基于g-C3N4的三元光催化剂体系的简便开发方法,该体系通过偶联少量的基于Ag的光敏剂和无金属的GO助催化剂来高度提高光催化活性。

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