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Double heterojunction nanowire photocatalysts for hydrogen generation

机译:双异质结纳米线的催化剂氢代

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摘要

Charge separation and charge transfer across interfaces are key aspects in the design of efficient photocatalysts for solar energy conversion. In this study, we investigate the hydrogen generating capabilities and underlying photophysics of nanostructured photocatalysts based on CdSe nanowires (NWs). Systems studied include CdSe, CdSe/CdS core/shell nanowires and their Pt nanoparticle-decorated counterparts. Femtosecond transient differential absorption measurements reveal how semiconductor/semiconductor and metal/semiconductor heterojunctions affect the charge separation and hydrogen generation efficiencies of these hybrid photocatalysts. In turn, we unravel the role of surface passivation, charge separation at semiconductor interfaces and charge transfer to metal co-catalysts in determining photocatalytic H2 generation efficiencies. This allows us to rationalize why Pt nanoparticle decorated CdSe/CdS NWs, a double heterojunction system, performs best with H2 generation rates of ~434.29 ± 27.40 Limol h~(-1) g~(-1) under UV/Visible irradiation. In particular, we conclude that the CdS shell of this double heterojunction system serves two purposes. The first is to passivate CdSe NW surface defects, leading to long-lived charges at the CdSe/CdS interface capable of carrying out reduction chemistries. Upon photoexcitation, we also find that CdS selectively injects charges into Pt NPs, enabling simultaneous reduction chemistries at the Pt NP/solvent interface. Pt nanoparticle decorated CdSe/CdS NWs thus enable reduction chemistries at not one, but rather two interfaces, taking advantage of each junction's optimal catalytic activities.
机译:电荷分离和电荷转移接口是设计的关键方面太阳能的高效催化剂转换。氢生成能力和基础photophysics的纳米催化剂基于CdSe纳米线(NWs)。包括CdSe CdSe / cd核/壳纳米线和Pt nanoparticle-decorated同行。飞秒瞬态微分吸收测量显示如何半导体/半导体和金属/半导体垂直影响电荷分离和氢的一代这些混合催化剂的效率。转,我们揭开表面钝化的作用,在半导体界面和电荷分离金属co-catalysts电荷转移确定光催化H2代效率。Pt纳米粒子修饰CdSe / cd NWs翻倍异质结系统,执行最佳H2一代的~ 434.29±27.40 Limol h ~ (1)g ~(1)紫外/可见光照射下。特别的,我们得出这样的结论:CdS壳这个系统有两个双异质结目的。表面缺陷,导致长寿的指控CdSe / cd接口执行的能力减少化学反应。还发现,cd选择性注入的指控Pt NPs,使同时减少化学反应在Pt NP /溶剂界面。纳米粒子修饰CdSe / cd NWs从而使减少化学反应在不是一个,而是两个接口,利用每个结的最佳的催化活性。

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