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首页> 外文期刊>ACS nano >Ultrafast photoinduced charge separation in metal-semiconductor nanohybrids
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Ultrafast photoinduced charge separation in metal-semiconductor nanohybrids

机译:金属半导体纳米杂化物中的超快光诱导电荷分离

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Hybrid nano-objects formed by two or more disparate materials are among the most promising and versatile nanosystems. A key parameter in their properties is interaction between their components. In this context we have investigated ultrafast charge separation in semiconductor-metal nanohybrids using a model system of gold-tipped CdS nanorods in a matchstick architecture. Experiments are performed using an optical time-resolved pump-probe technique, exciting either the semiconductor or the metal component of the particles, and probing the light-induced change of their optical response. Electron-hole pairs photoexcited in the semiconductor part of the nanohybrids are shown to undergo rapid charge separation with the electron transferred to the metal part on a sub-20 fs time scale. This ultrafast gold charging leads to a transient red-shift and broadening of the metal surface plasmon resonance, in agreement with results for free clusters but in contrast to observation for static charging of gold nanoparticles in liquid environments. Quantitative comparison with a theoretical model is in excellent agreement with the experimental results, confirming photoexcitation of one electron-hole pair per nanohybrid followed by ultrafast charge separation. The results also point to the utilization of such metal-semiconductor nanohybrids in light-harvesting applications and in photocatalysis.
机译:由两种或多种不同材料形成的混合纳米物体是最有前途和用途最广泛的纳米系统之一。它们属性的关键参数是它们组件之间的交互。在这种情况下,我们使用火柴棍体系结构中的金尖端CdS纳米棒模型系统研究了半导体-金属纳米杂化物中的超快电荷分离。实验是使用光学时间分辨泵浦探针技术进行的,激发粒子的半导体或金属成分,并探测光诱导的光学响应变化。显示在纳米杂化物的半导体部分中被光激发的电子-空穴对经历快速电荷分离,并且电子在不到20 fs的时间尺度上转移到金属部分。这种超快的金电荷导致瞬态红移和金属表面等离子体激元共振的扩大,这与游离团簇的结果一致,但与在液体环境中观察金纳米粒子的静态电荷相反。与理论模型的定量比较与实验结果非常吻合,证实了每个纳米杂化体对一个电子-空穴对的光激发,然后进行超快电荷分离。结果还指出了这种金属-半导体纳米杂化物在光收集应用和光催化中的利用。

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