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Insights Into Highly Improved Solar-Driven Photocatalytic Oxygen Evolution Over Integrated Ag3PO4/MoS2 Heterostructures

机译:深入研究集成Ag3PO4 / MoS2异质结构上由太阳能驱动的光催化氧的释放

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Oxygen evolution has been considered as the rate-determining step in photocatalytic water splitting due to its sluggish four-electron half-reaction rate, the development of oxygen-evolving photocatalysts with well-defined morphologies and superior interfacial contact is highly important for achieving high-performance solar water splitting. Herein, we report the fabrication of Ag3PO4/MoS2 nanocomposites and, for the first time, their use in photocatalytic water splitting into oxygen under LED light illumination. Ag3PO4 nanoparticles were found to be anchored evenly on the surface of MoS2 nanosheets, confirming an efficient hybridization of two semiconductor materials. A maximum oxygen-generating rate of 201.6 mol L-1 g-1 h-1 was determined when 200 mg MoS2 nanosheets were incorporated into Ag3PO4 nanoparticles, which is around 5 times higher than that of bulk Ag3PO4. Obvious enhancements in light-harvesting property, as well as electron-hole separation and charge transportation are revealed by the combination of different characterizations. ESR analysis verified that more active oxygen-containing radicals generate over illuminated Ag3PO4/MoS2 composite photocatalysts rather than irradiated Ag3PO4. The improvement in oxygen evolution performance of Ag3PO4/MoS2 composite photocatalysts is ascribed to wide spectra response in the visible-light region, more efficient charge separation and enhanced oxidation capacity in the valence band (VB). This study provides new insights into the design and development of novel composite photocatalytic materials for solar-to-fuel conversion.
机译:由于其缓慢的四电子半反应速率,放氧被认为是光催化水分解的速率决定步骤,具有良好形态和良好界面接触的放氧光催化剂的开发对于实现高分离度非常重要。性能太阳能水分解。本文中,我们报道了Ag3PO4 / MoS2纳米复合材料的制备,并首次在LED光照射下将其用于光催化水中分解为氧气的用途。发现Ag3PO4纳米颗粒均匀地锚固在MoS2纳米片的表面上,从而证实了两种半导体材料的有效杂交。当将200 mg MoS2纳米片掺入Ag3PO4纳米颗粒中时,测得的最大氧气生成速率为201.6 mol L-1 g-1 h-1,这比本体Ag3PO4的高约5倍。不同特征的组合揭示了光收集性能以及电子-空穴分离和电荷传输的明显增强。 ESR分析证实,在光照下的Ag3PO4 / MoS2复合光催化剂上比在辐照的Ag3PO4上能产生更多的含氧自由基。 Ag3PO4 / MoS2复合光催化剂在氧气释放性能方面的改进归因于可见光区域的宽光谱响应,更有效的电荷分离和价带(VB)的增强的氧化能力。这项研究为用于太阳能到燃料转化的新型复合光催化材料的设计和开发提供了新的见识。

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