Department of Applied Physics, School of Mathematics and Physics, University of Science and Technology Beijing, Beijing 100083, People's Republic of China.
Beijing National Laboratory for Condensed Matter Physics, Beijing Key Laboratory for Nanomaterials and Nanodevices, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, People's Republic of China.
Sci Rep. 2016 Sep 7;6:32724. doi: 10.1038/srep32724.
Using the ultrafast pump-probe transient absorption spectroscopy, the femtosecond-resolved plasmon-exciton interaction of graphene-Ag nanowire hybrids is experimentally investigated, in the VIS-NIR region. The plasmonic lifetime of Ag nanowire is about 150 ± 7 femtosecond (fs). For a single layer of graphene, the fast dynamic process at 275 ± 77 fs is due to the excitation of graphene excitons, and the slow process at 1.4 ± 0.3 picosecond (ps) is due to the plasmonic hot electron interaction with phonons of graphene. For the graphene-Ag nanowire hybrids, the time scale of the plasmon-induced hot electron transferring to graphene is 534 ± 108 fs, and the metal plasmon enhanced graphene plasmon is about 3.2 ± 0.8 ps in the VIS region. The graphene-Ag nanowire hybrids can be used for plasmon-driven chemical reactions. This graphene-mediated surface-enhanced Raman scattering substrate significantly increases the probability and efficiency of surface catalytic reactions co-driven by graphene-Ag nanowire hybridization, in comparison with reactions individually driven by monolayer graphene or single Ag nanowire. This implies that the graphene-Ag nanowire hybrids can not only lead to a significant accumulation of high-density hot electrons, but also significantly increase the plasmon-to-electron conversion efficiency, due to strong plasmon-exciton coupling.
利用超快泵浦探测瞬态吸收光谱技术,在 VIS-NIR 区域内实验研究了石墨烯-银纳米线杂化材料中的飞秒分辨等离子体-激子相互作用。银纳米线的等离子体寿命约为 150±7 飞秒(fs)。对于单层石墨烯,275±77fs 的快速动态过程是由于石墨烯激子的激发,而 1.4±0.3 皮秒(ps)的缓慢过程是由于等离子体热电子与石墨烯声子的相互作用。对于石墨烯-银纳米线杂化材料,等离子体诱导的热电子转移到石墨烯的时间尺度为 534±108fs,在 VIS 区域内金属等离子体增强的石墨烯等离子体约为 3.2±0.8ps。石墨烯-银纳米线杂化材料可用于等离子体驱动的化学反应。与单独由单层石墨烯或单个银纳米线驱动的反应相比,这种由石墨烯介导的表面增强拉曼散射衬底显著提高了由石墨烯-银纳米线杂化协同驱动的表面催化反应的概率和效率。这意味着由于强等离子体-激子耦合,石墨烯-银纳米线杂化不仅可以导致高密度热电子的显著积累,还可以显著提高等离子体-电子转换效率。