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Enhanced photocatalytic degradation of organic pollutants and hydrogen production by a visible light-responsive Bi_2WO_6/ZnIn_2S_4 heterojunction

机译:通过可见光响应性Bi_2WO_6 / Znin_2S_4异质结来增强有机污染物和氢生产的光催化降解有机污染物和氢气产生

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In this work, we have reported the photocatalytic applications of the direct Z-scheme Bi2WO6/ZnIn2S4 heterojunction in the degradation of organic pollutants and the production of H-2 gas. The nano-spherical shape of Bi2WO6 and porous structure of ZnIn2S4 particles, synthesized using cyclic microwave radiation method, facilitated the intimate interfacial contact of the heterojunction. Consequently, the photocatalytic activity of Bi2WO6/ ZnIn2S4 towards degradation of salicylic acid (SA) and methylene blue (MB), the models of non-dye and dye organic pollutants, were maximized after introducing only 12.5%wt of Bi2WO6. Similarly, this photocatalyst demonstrated an enhancement in H-2 production in comparison to the single-component photocatalysts. Furthermore, this photocatalyst maintained a high photoactivity after three repeated cycles for MB degradation and H-2 production. The enhanced photo-efficacy of this heterojunction originates from the improved separation and transportation of photogenerated e(-)/h(+) through a direct Z-scheme system. This was evidenced by electrochemical analyses and active species trapping experiments, combined with the consideration of reduction potential of reactive oxygen species.
机译:在这项工作中,我们已经报道了直接Z-SchemeF2WO6 / Znin2S4的光催化应用在有机污染物的降解和H-2气体的降解中的异质结。使用环状微波辐射法合成的Znin2S4颗粒的Bi2WO6和多孔结构的纳米球形,促进了异质结的紧密界面接触。因此,在引入仅12.5%的Bi2WO6之后,Bi2wo6 / Znin2S4朝向水杨酸(SA)和亚甲基蓝(MB)的缩放,亚甲酯和染料有机污染物的模型的光催化活性最大化。类似地,该光催化剂与单组分光催化剂相比,在H-2产生的增强中表现出增强。此外,在三次重复循环后,这种光催化剂在用于MB降解和H-2产生后保持高的光活性。该异质结的增强的光学效果来自通过直接Z方案系统改善光发化E( - )/ h(+)的分离和运输。这是通过电化学分析和活性物种诱捕实验证明的,结合了反应性氧物种的降低潜力。

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