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首页> 外文期刊>Applied Surface Science >Zn defect-mediated Z-scheme electron-hole separation in AgIn_5S_8/ZnS heterojunction for enhanced visible-light photocatalytic hydrogen evolution
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Zn defect-mediated Z-scheme electron-hole separation in AgIn_5S_8/ZnS heterojunction for enhanced visible-light photocatalytic hydrogen evolution

机译:Zn缺陷介导的AgIn_5S_8 / ZnS异质结中的Z方案电子-空穴分离,可增强可见光光催化氢的释放

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Exploring high-efficiency Z-scheme heterojunction photocatalyst has been regarded as an effective approach for promoting photocatalytic hydrogen production efficiency. In this study, a novel direct Z-scheme heterojunction composed of AgIn5S8 (denoted as AIS) and Zn-defective ZnS (denoted as D-ZnS) was fabricated via two-step hydrothermal method. The AIS/D-ZnS heterojunction exhibited improved visible light harvesting capability, prolonged charge lifetime and promoted charge separation efficiency, thus contributing to the remarkably enhanced photocatalytic activity as well as stability. The photocatalytic H2 evolution rate of the optimized (0.10:1)AIS/D-ZnS reached 932.76 mu mol.h(-1) g(-1), which was 12 times higher than that of bare D-ZnS (75.13 [mu mol.h(-1) g(-1)) under visible light irradiation, and an optimal apparent quantum yield of 3.7% was achieved at lambda = 420 nm. TEM, XPS, EPR and PL results confirmed the appropriate concentration of Zn defects is conducive to the separation of photogenerated carriers. DMPO-EPR and PL probe experiments for determining O-center dot(2)- and (OH)-O-center dot active radicals further proved that the transfer and separation of electrons and holes followed Z-scheme mechanism. This work not only presents an alternative strategy for the construction of highly efficient Z-scheme heterojunction photocatalysts, but also provides new insights into the role of defects in mediating the separation and migration of charge carriers.
机译:探索高效的Z型异质结光催化剂是提高光催化制氢效率的有效途径。在这项研究中,通过两步水热法制备了由AgIn5S8(表示为AIS)和Zn缺陷型ZnS(表示为D-ZnS)组成的新型直接Z型异质结。 AIS / D-ZnS异质结表现出改善的可见光收集能力,延长的电荷寿命和提高的电荷分离效率,从而有助于显着提高光催化活性和稳定性。优化的(0.10:1)AIS / D-ZnS的光催化H2释放速率达到932.76μmol·h(-1)g(-1),是裸D-ZnS(75.13μμ)的12倍。 mol.h(-1)g(-1)),在λ= 420 nm时达到了3.7%的最佳表观量子产率。 TEM,XPS,EPR和PL结果证实适当浓度的Zn缺陷有利于光生载流子的分离。 DMPO-EPR和PL探针测定O-中心点(2)-和(OH)-O-中心点活性自由基的实验进一步证明,电子和空穴的转移和分离遵循Z方案机制。这项工作不仅为构建高效的Z型异质结光催化剂提供了另一种策略,而且为缺陷在介导电荷载流子的分离和迁移中的作用提供了新的见解。

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