Department of Electrical and Computer Engineering, Duke University, Durham, NC 27708, USA.
Small. 2012 Sep 10;8(17):2721-30. doi: 10.1002/smll.201200694. Epub 2012 Jun 5.
Graphene is emerging as a promising material for plasmonics applications due to its strong light-matter interactions, most of which are theoretically predicted but not yet experimentally realized. Therefore, the integration of plasmonic nanoparticles to create metal nanoparticle/graphene composites enables numerous phenomena important for a range of applications from photonics to catalysis. For these applications it is important to articulate the coupling of photon-based excitations such as the interaction between plasmons in each of the material components, as well as their charge-based interactions dependent upon the energy alignment at the metal/graphene interface. These coupled phenomena underpin an active application area in graphene-based composites due to nanoparticle-dependent surface-enhanced Raman scattering (SERS) of graphene phonon modes. This study reveals the coupling of a graphene/SiC support with Ga-nanoparticle-localized surface plasmon resonance, which is of particular interest due to its ability to be tuned across the UV into the near-IR region. This work is the first demonstration of the evolving plasmon resonance on graphene during the synthesis of surface-supported metal nanoparticles, thus providing evidence for the theoretically predicted screening revealed by a damped resonance with little energy shift. Therefore, the role of the graphene/substrate heterojunction in tailoring the plasmon resonance for nanoplasmonic applications is shown. Additionally, the coupled phenomena between the graphene-Ga plasmon properties, charge transfer, and SERS of graphene vibrational modes are explored.
石墨烯作为一种有前途的等离子体应用材料而崭露头角,这是由于其具有强烈的光物质相互作用,其中大部分是理论预测的,但尚未在实验中实现。因此,将等离子体纳米粒子集成到金属纳米粒子/石墨烯复合材料中,能够实现从光子学到催化等一系列应用中非常重要的现象。对于这些应用,重要的是要阐明基于光子的激发的耦合,例如每种材料组件中的等离子体之间的相互作用,以及它们基于能量排列在金属/石墨烯界面上的电荷相互作用。由于基于石墨烯的复合材料中的纳米粒子依赖性表面增强拉曼散射(SERS),这些耦合现象构成了基于石墨烯的复合材料中的一个活跃应用领域。本研究揭示了石墨烯/SiC 支撑与 Ga 纳米粒子局部表面等离激元共振的耦合,由于其能够在 UV 区域调谐到近红外区域,因此特别有趣。这项工作首次证明了在表面支撑的金属纳米粒子合成过程中石墨烯上的等离子体共振的演变,从而为理论预测的屏蔽提供了证据,该屏蔽通过具有较小能量位移的阻尼共振来实现。因此,展示了石墨烯/衬底异质结在为纳米等离子体应用调整等离子体共振方面的作用。此外,还探索了石墨烯-Ga 等离子体特性、电荷转移和石墨烯振动模式的 SERS 之间的耦合现象。