David Christin, García de Abajo F Javier
IQFR-CSIC , Serrano 119, 28006 Madrid, Spain.
ACS Nano. 2014 Sep 23;8(9):9558-66. doi: 10.1021/nn5038527. Epub 2014 Aug 25.
We use an extension of the hydrodynamic model to study nonlocal effects in the collective plasmon excitations at metal surfaces and narrow gaps between metals, including the surface spill-out of conduction band electrons. In particular, we simulate metal surfaces consisting of a smooth conduction-electron density profile and an abrupt jellium edge. We focus on aluminum and gold as prototypical examples of simple and noble metals, respectively. Our calculations agree with the dispersion relations measured from planar surfaces for these materials. Systems involving small gaps display a regime of tunnelling electrons, which is partially captured by the overlap of electron densities. This extension of the hydrodynamic model to cope with inhomogeneous density profiles provides a relatively fast and accurate way of describing the optical response of metal surfaces at subnanometer distances.
我们使用流体动力学模型的扩展来研究金属表面和金属间窄间隙处集体等离子体激元激发中的非局部效应,包括导带电子的表面溢出。特别地,我们模拟了具有平滑导电子密度分布和突然的凝胶边缘的金属表面。我们分别将铝和金作为简单金属和贵金属的典型例子进行研究。我们的计算结果与从这些材料的平面表面测量得到的色散关系相符。涉及小间隙的系统表现出隧道电子的状态,这部分地由电子密度的重叠所捕获。这种流体动力学模型的扩展以应对不均匀密度分布,为描述亚纳米距离下金属表面的光学响应提供了一种相对快速且准确的方法。