Tries Alexander, Osella Silvio, Zhang Pengfei, Xu Fugui, Ramanan Charusheela, Kläui Mathias, Mai Yiyong, Beljonne David, Wang Hai I
Max Planck Institute for Polymer Research, Ackermannweg 10, D-55128 Mainz, Germany.
Institute of Physics and Graduate School of Excellence Material Sciences in Mainz, Johannes Gutenberg-University Mainz, D-55128 Mainz, Germany.
Nano Lett. 2020 May 13;20(5):2993-3002. doi: 10.1021/acs.nanolett.9b04816. Epub 2020 Mar 31.
Graphene nanoribbons (GNRs) with atomically precise width and edge structures are a promising class of nanomaterials for optoelectronics, thanks to their semiconducting nature and high mobility of charge carriers. Understanding the fundamental static optical properties and ultrafast dynamics of charge carrier generation in GNRs is essential for optoelectronic applications. Combining THz spectroscopy and theoretical calculations, we report a strong exciton effect with binding energy up to ∼700 meV in liquid-phase-dispersed GNRs with a width of 1.7 nm and an optical band gap of ∼1.6 eV, illustrating the intrinsically strong Coulomb interactions between photogenerated electrons and holes. By tracking the exciton dynamics, we reveal an ultrafast formation of excitons in GNRs with a long lifetime over 100 ps. Our results not only reveal fundamental aspects of excitons in GNRs (strong binding energy and ultrafast exciton formation etc.) but also highlight promising properties of GNRs for optoelectronic devices.
具有原子级精确宽度和边缘结构的石墨烯纳米带(GNRs),由于其半导体性质和高载流子迁移率,是一类很有前景的用于光电子学的纳米材料。了解GNRs中基本的静态光学性质和电荷载流子产生的超快动力学对于光电子应用至关重要。结合太赫兹光谱和理论计算,我们报道了在宽度为1.7 nm、光学带隙约为1.6 eV的液相分散GNRs中存在结合能高达约700 meV的强激子效应,这说明了光生电子和空穴之间本质上强烈的库仑相互作用。通过追踪激子动力学,我们揭示了GNRs中激子的超快形成,其寿命超过100 ps。我们的结果不仅揭示了GNRs中激子的基本方面(强结合能和超快激子形成等),还突出了GNRs在光电器件方面的良好特性。