Cavani Nicola, De Corato Marzio, Ruini Alice, Prezzi Deborah, Molinari Elisa, Lodi Rizzini Alberto, Rosi Agnese, Biagi Roberto, Corradini Valdis, Wang Xiao-Ye, Feng Xinliang, Narita Akimitsu, Müllen Klaus, De Renzi Valentina
Dipartimento di Scienze Fisiche, Informatiche e Matematiche (FIM), Università degli Studi di Modena e Reggio Emilia, 41125, Modena, Italy.
Centro S3, Istituto Nanoscienze CNR-NANO, 41125, Modena, Italy.
Nanoscale. 2020 Oct 8;12(38):19681-19688. doi: 10.1039/d0nr05763k.
Bottom-up approaches exploiting on-surface synthesis reactions allow atomic-scale precision in the fabrication of graphene nanoribbons (GNRs); this is essential for their technological applications since their unique electronic and optical properties are largely controlled by the specific edge structure. By means of a combined experimental-theoretical investigation of some prototype GNRs, we show here that high-resolution electron energy-loss spectroscopy (HREELS) can be successfully employed to fingerprint the details of the GNR edge structure. In particular, we demonstrate how the features of HREEL vibrational spectra - mainly dictated by edge CH out-of-plane modes - are unambiguously related to the GNR edge structure. Moreover, we single out those modes which are localized at the GNR termini and show how their relative intensity can be related to the average GNR length.
利用表面合成反应的自下而上方法能够在石墨烯纳米带(GNRs)的制备中实现原子尺度的精度;这对于它们的技术应用至关重要,因为其独特的电子和光学性质在很大程度上由特定的边缘结构控制。通过对一些原型GNRs进行实验与理论相结合的研究,我们在此表明,高分辨率电子能量损失谱(HREELS)能够成功地用于确定GNR边缘结构的细节特征。特别是,我们展示了HREEL振动光谱的特征——主要由边缘CH面外模式决定——如何与GNR边缘结构明确相关。此外,我们找出了那些定域在GNR末端的模式,并展示了它们的相对强度如何与GNR的平均长度相关。