论文标题
单一石墨烯纳米纤维中的成像和控制相干的声子波数据包
Imaging and Controlling Coherent Phonon Wave Packets in Single Graphene Nanoribbons
论文作者
论文摘要
原子的运动是分子和材料中任何化学或结构转化的核心。外部源激活这种运动后,可以连贯耦合几种(通常许多)振动模式,从而促进化学或结构相变。这些相干的动力学发生在超快时间尺度上,例如,通过非局部超快振动光谱测量在整体分子集合和固体中进行。然而,在原子和分子尺度上本地的跟踪和控制振动相干是更具挑战性的,实际上到目前为止仍然难以捉摸。在这里,我们证明,在扫描隧道显微镜(STM)进行时,可以通过飞秒连贯的抗Stokes Raman光谱(CAR)探测宽带激光脉冲诱导的振动相干。除了确定生成的声子波数据包的去态(〜440 fs)和种群衰减时间(〜1.8 ps)之外,我们还能够跟踪和控制相应的量子相干,我们显示的时间尺度短至70 fs。我们证明,二维频率相关光谱明确揭示了GNR中不同声子模式之间的量子耦合。
The motion of atoms is at the heart of any chemical or structural transformation in molecules and materials. Upon activation of this motion by an external source, several (usually many) vibrational modes can be coherently coupled, thus facilitating the chemical or structural phase transformation. These coherent dynamics occur on the ultrafast time scale, as revealed, e.g., by nonlocal ultrafast vibrational spectroscopic measurements in bulk molecular ensembles and solids. Tracking and controlling vibrational coherences locally at the atomic and molecular scales is, however, much more challenging and in fact has remained elusive so far. Here, we demonstrate that the vibrational coherences induced by broadband laser pulses on a single graphene nanoribbon (GNR) can be probed by femtosecond coherent anti-Stokes Raman spectroscopy (CARS) when performed in a scanning tunnelling microscope (STM). In addition to determining dephasing (~ 440 fs) and population decay times (~1.8 ps) of the generated phonon wave packets, we are able to track and control the corresponding quantum coherences, which we show to evolve on time scales as short as ~ 70 fs. We demonstrate that a two-dimensional frequency correlation spectrum unequivocally reveals the quantum couplings between different phonon modes in the GNR.