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首页> 外文期刊>Frontiers in Chemistry >Novel P-n Li2SnO3/g-C3N4 Heterojunction With Enhanced Visible Light Photocatalytic Efficiency Toward Rhodamine B Degradation
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Novel P-n Li2SnO3/g-C3N4 Heterojunction With Enhanced Visible Light Photocatalytic Efficiency Toward Rhodamine B Degradation

机译:新型P-N LI2SNO3 / G-C3N4异质结具有增强的可见光光催化效率朝鲜罗丹明B降解

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摘要

The design of highly efficient and stable photocatalysts to utilize solar energy is a significant challenge in photocatalysis. In this work, a series of novel p-n heterojunction photocatalysts, Li2SnO3/g-C3N4, was successfully prepared via a facile calcining method, and exhibited superior photocatalytic activity toward the photodegradation of Rhodamine B solution under visible light irradiation as compared with pure Li2SnO3 and g-C3N4. The maximum kinetic rate constant of photocatalytic degradation of Rhodamine B within 60 min was 0.0302 min-1, and the composites still retained excellent performance after four successive recycles. Chemical reactive species trapping experiments and electron paramagnetic resonance demonstrated that hydroxyl radicals (?OH) and superoxide ions (?O_2^-) were the dominant active species in the photocatalytic oxidation of Rhodamine B solution, while holes (h^+) only played a minor role. We demonstrated that the enhancement of the photocatalytic activity could be assigned to the formation of a p-n junction photocatalytic system, which benefitted the efficient separation of photogenerated carriers. This study provides a visible light-responsive heterojunction photocatalyst with potential applications in environmental remediation.
机译:高效稳定的光催化剂的设计利用太阳能是光催化的重大挑战。在这项工作中,通过容易煅烧方法成功地制备了一系列新的PN异质结光催化剂,Li2SNO3 / G-C3N4,并与纯Li2SNO3和G相比,在可见光照射下表现出朝向罗丹明B溶液的光降解的优异的光催化活性-C3N4。 60分钟内罗丹明B光催化降解的最大动力速率常数为0.0302 min-1,并且复合材料在四次连续再循环后仍然保持优异的性能。化学反应性物种诱捕实验和电子顺磁共振表明羟基自由基(→OH)和超氧化物离子(α0_2^ - )是罗丹明B溶液的光催化氧化中的主要活性物质,而孔(H ^ +)仅发挥作用轻微的作用。我们证明,可以将光催化活性的增强分配给形成P-N结光催化系统的形成,这有利于光生载体的有效分离。本研究提供了一种可见光响应杂交光催化剂,具有环境修复的潜在应用。

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