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Nanoscale control of phonon excitations in graphene

机译:石墨烯中声子激发的纳米级控制

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Phonons, which are collective excitations in a lattice of atoms or molecules, play a major role in determining various physical properties of condensed matter, such as thermal and electrical conductivities. In particular, phonons in graphene interact strongly with electrons; however, unlike in usual metals, these interactions between phonons and massless Dirac fermions appear to mirror the rather complicated physics of those between light and relativistic electrons. Therefore, a fundamental understanding of the underlying physics through systematic studies of phonon interactions and excitations in graphene is crucial for realising graphene-based devices. In this study, we demonstrate that the local phonon properties of graphene can be controlled at the nanoscale by tuning the interaction strength between graphene and an underlying Pt substrate. Using scanning probe methods, we determine that the reduced interaction due to embedded Ar atoms facilitates electron–phonon excitations, further influencing phonon-assisted inelastic electron tunnelling.
机译:声子是原子或分子晶格中的集体激发,在确定冷凝物的各种物理特性(例如热导率和电导率)方面起着重要作用。特别是,石墨烯中的声子与电子强烈相互作用。然而,与通常的金属不同,声子与无质量狄拉克费米子之间的相互作用似乎反映了光电子与相对论电子之间相当复杂的物理性质。因此,通过对石墨烯中声子相互作用和激发的系统研究,对基础物理学的基本理解对于实现基于石墨烯的器件至关重要。在这项研究中,我们证明了可以通过调节石墨烯与下面的Pt衬底之间的相互作用强度,在纳米级控制石墨烯的局部声子特性。使用扫描探针方法,我们确定由于嵌入的Ar原子引起的相互作用降低,促进了电子-声子激发,进一步影响了声子辅助的非弹性电子隧穿。

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