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首页> 外文期刊>The Journal of Chemical Physics >Plasmon-induced efficient hot carrier generation in graphene on gold ultrathin film with periodic array of holes: Ultrafast pump-probe spectroscopy
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Plasmon-induced efficient hot carrier generation in graphene on gold ultrathin film with periodic array of holes: Ultrafast pump-probe spectroscopy

机译:具有周期性孔阵列的金超薄膜上石墨烯中的等离子体诱导的高效热载体:超快泵探针光谱

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Using ultrafast pump-probe reflectivity with a 3.1 eV pump and coherent white light probe (1.1-2.6 eV), we show that graphene on gold nanostructures exhibits a strong coupling to the plasmonic resonances of the ordered lattice hole array, thus injecting a high density of hot carriers in graphene through plasmons. The system being studied is single-layer graphene on an ultrathin film of gold with periodic arrangements of holes showing anomalous transmission. A comparison is made with gold film with and without hole array. By selectively probing transient carrier dynamics in the spectral regions corresponding to plasmonic resonances, we show efficient plasmon induced hot carrier generation in graphene. We also show that due to high electromagnetic field intensities at the edge of the submicron holes, fast decay time (10-100 fs), and short decay length (1 nm) of plasmons, a highly confined density of hot carriers (very close to the edge of the holes) is generated by Landau damping of plasmons within the holey gold film. A contribution to transient decay dynamics due to the diffusion of the initial nonuniform distribution of hot carriers away from the hole edges is observed. Our results are important for future applications of novel hot carrier device concepts where hot carriers with tunable energy can be generated in different graphene regions connected seamlessly. Published under license by AIP Publishing.
机译:使用超快泵探头反射率与3.1eV泵和连贯的白光探头(1.1-2.6eV),我们表明金纳米结构上的石墨烯与有序晶格孔阵列的等离子体共振表现出强烈的耦合,从而注入高密度石墨烯中的热载体通过等离子体。所研究的系统是单层石墨烯,在金的超薄薄膜上,具有周期性的孔,显示出异常传输。使用带有孔阵列的金膜进行比较。通过在对应于等离子体共振的光谱区域中选择性地探测瞬态载波动力学,我们在石墨烯中显示出有效的等离子体诱导的热载体产生。我们还表明,由于亚微米孔的边缘的高电磁场强度,快速衰减时间(10-100 fs)和等级的短衰减长度(1nm),热载体的高度限制密度(非常接近孔的边缘由孔金膜内的等离子体的Landau阻尼产生。观察到由于远离孔边缘的热载体的初始非均匀分布的扩散导致的瞬态衰减动力学的贡献。我们的结果对于新颖的热载体设备概念的未来应用很重要,其中热载体可以在无缝连接的不同石墨烯区域中产生。通过AIP发布在许可证下发布。

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