论文标题

贵金属纳米结构的光学响应:晶体学方面的量子表面效应

Optical response of noble metal nanostructures: Quantum surface effects in crystallographic facets

论文作者

Echarri, A. Rodríguez, Gonçalves, P. A. D., Tserkezis, C., de Abajo, F. Javier García, Mortensen, N. Asger, Cox, Joel D.

论文摘要

高贵的金属纳米结构是纳米镜中普遍存在的元素,支持等离子体模式,这些模式可以将光线聚焦到与量子限制和与基础电子气体中的量子限制和空间分散体相关的长度尺度。对于晶体贵金属,非局部效应自然更为突出,这可能会比其无定形对应物提供较低的固有损失,并且具有特定的晶体面带来了不同的电子表面状态。在这里,我们采用量子力学模型来描述影响晶体贵族金属膜的光学响应的​​非细胞效应,并证明可以使用一组称为Feibelman $ d $ Parameters的表面响应函数将这些效果充分捕获。特别是,我们表征了与(111)和(100)金,银和铜相关的$ d $参数,强调了由于电子波函数溢出而引起的表面效应的重要性以及由于原子层散发而出现的表面射击带隙。然后,我们表明,可以直接应用提取的$ D $参数来描述各种纳米级金属感兴趣的光学响应,包括金属超薄膜,石墨烯 - 金属异质结构托管极其狭窄的声学石墨烯基质子极为狭窄的含量,并具有结晶的金属纳米纳米构成层状的质量。此处报道的列出的$ D $ - 参数可以规避计算昂贵的原子原子模拟,以描述微观晶体金属表面的光学反应中的微观非局部效应,这些效应正广泛使用,这些效果已广泛使用,这些效果随着对nano-opopticsics in nano-opopostics in nanoo-opoctics in nan opopticsics的原子能量表的增加而增加对形态的控制量的越来越多。

Noble metal nanostructures are ubiquitous elements in nano-optics, supporting plasmon modes that can focus light down to length scales commensurate with nonlocal effects associated with quantum confinement and spatial dispersion in the underlying electron gas. Nonlocal effects are naturally more prominent for crystalline noble metals, which potentially offer lower intrinsic loss than their amorphous counterparts, and with particular crystal facets giving rise to distinct electronic surface states. Here, we employ a quantum-mechanical model to describe nonclassical effects impacting the optical response of crystalline noble-metal films and demonstrate that these can be well-captured using a set of surface-response functions known as Feibelman $d$-parameters. In particular, we characterize the $d$-parameters associated with the (111) and (100) crystal facets of gold, silver, and copper, emphasizing the importance of surface effects arising due to electron wave function spill-out and the surface-projected band gap emerging from atomic-layer corrugation. We then show that the extracted $d$-parameters can be straightforwardly applied to describe the optical response of various nanoscale metal morphologies of interest, including metallic ultra-thin films, graphene-metal heterostructures hosting extremely confined acoustic graphene plasmons, and crystallographic faceted metallic nanoparticles supporting localized surface plasmons. The tabulated $d$-parameters reported here can circumvent computationally expensive first-principles atomistic simulations to describe microscopic nonlocal effects in the optical response of mesoscopic crystalline metal surfaces, which are becoming widely available with increasing control over morphology down to atomic length scales for state-of-the-art experiments in nano-optics.

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