石墨烯
等离子体子
材料科学
太赫兹辐射
光电子学
纳米尺度
载流子
拉曼光谱
拉曼散射
石墨烯纳米带
散射
纳米技术
光学
物理
作者
Gergely Dobrik,Péter Nemes-Incze,Bruno Majérus,P. Süle,Péter Vancsó,Gábor Piszter,M. Menyhárd,Benjámin Kalas,P. Petrik,Luc Henrard,Levente Tapasztó
标识
DOI:10.1038/s41565-021-01007-x
摘要
Quantum confinement of the charge carriers of graphene is an effective way to engineer its properties. This is commonly realized through physical edges that are associated with the deterioration of mobility and strong suppression of plasmon resonances. Here, we demonstrate a simple, large-area, edge-free nanostructuring technique, based on amplifying random nanoscale structural corrugations to a level where they efficiently confine charge carriers, without inducing significant inter-valley scattering. This soft confinement allows the low-loss lateral ultra-confinement of graphene plasmons, scaling up their resonance frequency from the native terahertz to the commercially relevant visible range. Visible graphene plasmons localized into nanocorrugations mediate much stronger light-matter interactions (Raman enhancement) than previously achieved with graphene, enabling the detection of specific molecules from femtomolar solutions or ambient air. Moreover, nanocorrugated graphene sheets also support propagating visible plasmon modes, as revealed by scanning near-field optical microscopy observation of their interference patterns.
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