论文标题
通过嵌入的银纳米颗粒中的量化等离子的热载体生成的介电工程
Dielectric engineering of hot carrier generation by quantized plasmons in embedded silver nanoparticles
论文作者
论文摘要
了解和控制等离子诱导的热载体的特性是迈向下一代光伏和光催化设备的关键步骤。在这里,我们通过设计嵌入介电宿主材料来揭示了一条工程热载体生成速率的途径。将我们最近建立的量子力学方法扩展到描述量化等离子体的衰减到热载体中,我们通过有效的电子电子相互作用来捕获纳米颗粒环境的外部筛选,以及通过银D电子的内部筛选。我们发现,可以通过工程化介电宿主材料来最大化热载体的产生,从而使局部表面等离子体的能量与状态的纳米颗粒关节密度的最高值相吻合。这使我们能够发现控制载体能量和产生的量的路径,例如,通过嵌入在强烈的筛选环境中获得了大量相对较低的能量载体。
Understanding and controlling properties of plasmon-induced hot carriers is a key step towards next-generation photovoltaic and photocatalytic devices. Here, we uncover a route to engineering hot-carrier generation rates of silver nanoparticles by designed embedding in dielectric host materials. Extending our recently established quantum-mechanical approach to describe the decay of quantized plasmons into hot carriers we capture both external screening by the nanoparticle environment and internal screening by silver d-electrons through an effective electron-electron interaction. We find that hot-carrier generation can be maximized by engineering the dielectric host material such that the energy of the localized surface plasmon coincides with the highest value of the nanoparticle joint density of states. This allows us to uncover a path to control the energy of the carriers and the amount produced, for example a large number of relatively low-energy carriers are obtained by embedding in strongly screening environments.