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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Insights into Ultrashort Laser-Driven Au:TiO2 Nanocomposite Formation
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Insights into Ultrashort Laser-Driven Au:TiO2 Nanocomposite Formation

机译:洞察超级激光驱动AU:TiO2纳米复合材料

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摘要

Modern methods of laser-based nanocomposite fabrication and treatment rely on a deep understanding of the interplay between a set of mechanisms involved, such as nanoparticle growth and decay, material phase transformation, degradation, and damage. In this work, scanning multipulse femtosecond laser irradiation is used for Au:TiO2 nanocomposite formation. Depending on laser scan speed, two different regimes are observed revealing different gold nanoparticle growth rates. The regime of the remarkably fast laser-induced growth of Au nanoparticles is found to be accompanied by the cavity formation in titania film around the particles. The transition between two formation regimes is found to be abrupt, confirming the catastrophic mechanism of Au nanoparticle growth. The obtained results are analyzed based on the developed numerical model including effects such as nanoparticle absorption, local field enhancement, photoinduced free carrier generation, plasmon-assisted electron emission, and thermal heat transfer from nanoparticles toward titania matrix. Our modeling reveals the crucial role of collective thermoplasmonic effects caused namely by bimodal nanoparticle size distribution. The performed analysis also suggests that spall in the solid state is responsible for final matrix degradation if nanoparticles become large enough. The considered laser-based formation of optical nanocomposites is crucial not only for the better understanding of ultrashort laser interactions with glass-metallic nanocomposite materials but also for numerous applications in photocatalysts, solar cells, and chemosensors.
机译:基于激光的纳米复合材料制造和治疗方法依赖于深入了解涉及的一组机制之间的相互作用,例如纳米颗粒生长和衰减,材料相变,降解和损伤。在这项工作中,扫描多级飞秒激光照射用于Au:TiO2纳米复合材料。根据激光扫描速度,观察到两个不同的制度揭示了不同的金纳米颗粒生长速率。发现可显着快速激光诱导的Au纳米颗粒生长的制度被发现伴随着颗粒周围的二氧化钛膜中的腔体形成。发现两个形成制度之间的转变突然,确认Au纳米粒子生长的灾难性机制。基于所得的数控模型分析所得结果,包括纳米粒子吸收,局部场增强,光诱导的游离载流子产生,等离子体辅助电子发射和从纳米颗粒朝向二氧化钛基质的热传热的效果分析。我们的建模揭示了通过双峰纳米粒子尺寸分布所造成的集体热正式化效应的关键作用。所进行的分析还表明,如果纳米颗粒足够大,固态中的剥落负责最终的基质劣化。所考虑的基于光学纳米复合材料的形成不仅是更好地理解与玻璃金属纳米复合材料的超短激光相互作用,而且对于光催化剂,太阳能电池和化学传感器的许多应用。

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