首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Ultrathin hexagonal SnS2 nanosheets coupled with g-C3N4 nanosheets as 2D/2D heterojunction photocatalysts toward high photocatalytic activity
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Ultrathin hexagonal SnS2 nanosheets coupled with g-C3N4 nanosheets as 2D/2D heterojunction photocatalysts toward high photocatalytic activity

机译:超薄六角形SnS2纳米片与g-C3N4纳米片耦合作为2D / 2D异质结光催化剂,具有高光催化活性

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摘要

In this work, we present the 2D/2D type of heterojunction photocatalysts fabricated by horizontal loading ultrathin hexagonal SnS2 nanosheets on g-C3N4 nanosheets through a facile ultrasonic dispersion method. The sheet-like structures of these two nanomaterials induce a large contact region in the heterojunction interface, as evidenced by electron microscopic analyses. By taking advantage of this feature, the as-fabricated SnS2/g-C3N4 heterojunction nanosheets exhibit considerable improvement on the photocatalytic activities for the degradation of organic dyes and phenols under visible light irradiation as compared to pure g-C3N4 and SnS2 nanosheets. In particular, the optimal heterojunction nanosheet with 5.0wt.% SnS2 shows the apparent rate constant of ~0.2min~(-1) for the RhB photodegradation, which is higher than that of pure g-C3 N4 and SnS2 nanosheets by a factor of 4 and 8, respectively. Further studies by steady-state and transient photoluminescence spectroscopy indicate that the photosynergistic effect of SnS2/g-CaN4 heterojunction can remarkably enhance the photoinduced interfacial charge transfer, thereby increasing the charge separation during the photocatalytic reaction.
机译:在这项工作中,我们提出了一种2D / 2D型异质结光催化剂,它是通过一种便捷的超声分散方法将超薄六角形SnS2纳米片水平加载到g-C3N4纳米片上而制成的。电子显微镜分析证明,这两种纳米材料的片状结构在异质结界面中诱导出较大的接触区域。与纯g-C3N4和SnS2纳米片相比,通过利用此功能,所制造的SnS2 / g-C3N4异质结纳米片在可见光照射下对光催化降解有机染料和酚的活性显示出显着改善。特别是,最佳的SnS2含量为5.0wt。%的异质结纳米片对RhB的光降解表现出约0.2min〜(-1)的表观速率常数,比纯g-C3 N4和SnS2纳米片的表观速率常数高。分别为4和8。稳态和瞬态光致发光光谱的进一步研究表明,SnS2 / g-CaN4异质结的光协同效应可以显着增强光诱导的界面电荷转移,从而增加光催化反应过程中的电荷分离。

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