| Literature DB >> 29696469 |
Keke Li1,2, Anping Liu3, Dapeng Wei4, Keke Yu1,2, Xiaonan Sun1, Sheng Yan5, Yingzhou Huang6.
Abstract
Benefiting from the induced image charge on metal film, the light energy is confined on a film surface under metal nanoparticle dimer, which is called electromagnetic field redistribution. In this work, electromagnetic field distribution of metal nanoparticle monomer or dimer on graphene is investigated through finite-difference time-domain method. The results point out that the electromagnetic field (EM) redistribution occurs in this nanoparticle/graphene hybrid system at infrared region where light energy could also be confined on a monolayer graphene surface. Surface charge distribution was analyzed using finite element analysis, and surface-enhanced Raman spectrum (SERS) was utilized to verify this phenomenon. Furthermore, the data about dielectric nanoparticle on monolayer graphene demonstrate this EM redistribution is attributed to strong coupling between light-excited surface charge on monolayer graphene and graphene plasmon-induced image charge on dielectric nanoparticle surface. Our work extends the knowledge of monolayer graphene plasmon, which has a wide range of applications in monolayer graphene-related film.Entities:
Keywords: EM redistribution; Graphene plasmons; Nanoparticle/graphene hybrid system; SERS
Year: 2018 PMID: 29696469 PMCID: PMC5918144 DOI: 10.1186/s11671-018-2535-0
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Electric field redistribution in nanoparticle/graphene hybrid system. a, b Electric field distributions of R = 50 nm nanoparticle monomer and dimer on monolayer graphene film with a 1-nm gap at 633 nm, c, d at 2000 nm, and e, f at 3000 nm
Fig. 2Surface charge redistribution in nanoparticle/graphene hybrid system. Surface charge distributions of R = 50 nm Ag nanoparticle dimer on monolayer graphene with 1-nm gap a at 633 nm and c at 3000 nm. Surface charge distributions in graphene surface of R = 50 nm Ag nanoparticle dimer on monolayer graphene with 1-nm gap b at 633 nm and d at 3000 nm. The deduced charge dipole interaction representation at 633 and 3000 nm is shown on the right of Fig. 2
Fig. 3SERS of nanoparticle/graphene hybrid system. a SERS of monolayer graphene adsorbed on graphene from Ag nanoparticle monomer and without particle and scheme of the samples. b SERS of monolayer graphene adsorbed on graphene from Ag nanoparticle dimer and without particle and scheme of the samples
Fig 4Electric field distributions in different dielectric nanoparticle/graphene hybrid system. a–c Electric field distributions of different permittivity nanoparticle dimers on monolayer graphene film with a 1-nm gap at 3000 nm. a Si (n = 4.21 + 0.017i), b SiO2 (n = 1.5), c air (n = 1). d Electric field distributions of SiO2 nanoparticle dimer on SiO2 film with a 1-nm gap at 3000 nm