Literature DB >> 31406319

Position and momentum mapping of vibrations in graphene nanostructures.

Ryosuke Senga1, Kazu Suenaga2, Paolo Barone3, Shigeyuki Morishita4, Francesco Mauri5,6, Thomas Pichler7.   

Abstract

Propagating atomic vibrational waves-phonons-determine important thermal, mechanical, optoelectronic and transport characteristics of materials. Thus a knowledge of phonon dispersion (that is, the dependence of vibrational energy on momentum) is a key part of our understanding and optimization of a material's behaviour. However, the phonon dispersion of a free-standing monolayer of a two-dimensional material such as graphene, and its local variations, have remained elusive for the past decade because of the experimental limitations of vibrational spectroscopy. Even though electron energy loss spectroscopy (EELS) in transmission has recently been shown to probe local vibrational charge responses1-4, such studies are still limited by momentum space integration due to the focused beam geometry; they are also restricted to polar materials such as boron nitride or oxides1-4, in which huge signals induced by strong dipole moments are present. On the other hand, measurements on graphene performed by inelastic X-ray (neutron) scattering spectroscopy5-7 or EELS in reflection8,9 do not have any spatial resolution and require large microcrystals. Here we provide a new pathway to determine phonon dispersions down to the scale of an individual free-standing graphene monolayer by mapping the distinct vibrational modes for a large momentum transfer. The measured scattering intensities are accurately reproduced and interpreted with density functional perturbation theory10. Additionally, a nanometre-scale mapping of selected momentum-resolved vibrational modes using graphene nanoribbon structures has enabled us to spatially disentangle bulk, edge and surface vibrations. Our results are a proof-of-principle demonstration of the feasibility of studying local vibrational modes in two-dimensional monolayer materials at the nanometre scale.

Entities:  

Year:  2019        PMID: 31406319     DOI: 10.1038/s41586-019-1477-8

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  6 in total

1.  Measuring phonon dispersion at an interface.

Authors:  Ruishi Qi; Ruochen Shi; Yuehui Li; Yuanwei Sun; Mei Wu; Ning Li; Jinlong Du; Kaihui Liu; Chunlin Chen; Ji Chen; Feng Wang; Dapeng Yu; En-Ge Wang; Peng Gao
Journal:  Nature       Date:  2021-11-17       Impact factor: 49.962

2.  Nanoscale imaging of phonon dynamics by electron microscopy.

Authors:  Chaitanya A Gadre; Xingxu Yan; Qichen Song; Jie Li; Lei Gu; Huaixun Huyan; Toshihiro Aoki; Sheng-Wei Lee; Gang Chen; Ruqian Wu; Xiaoqing Pan
Journal:  Nature       Date:  2022-06-08       Impact factor: 69.504

3.  Four-dimensional vibrational spectroscopy for nanoscale mapping of phonon dispersion in BN nanotubes.

Authors:  Ruishi Qi; Ning Li; Jinlong Du; Ruochen Shi; Yang Huang; Xiaoxia Yang; Lei Liu; Zhi Xu; Qing Dai; Dapeng Yu; Peng Gao
Journal:  Nat Commun       Date:  2021-02-19       Impact factor: 14.919

4.  Spatially Resolved Band Gap and Dielectric Function in Two-Dimensional Materials from Electron Energy Loss Spectroscopy.

Authors:  Abel Brokkelkamp; Jaco Ter Hoeve; Isabel Postmes; Sabrya E van Heijst; Louis Maduro; Albert V Davydov; Sergiy Krylyuk; Juan Rojo; Sonia Conesa-Boj
Journal:  J Phys Chem A       Date:  2022-02-15       Impact factor: 2.781

Review 5.  Optical Excitations with Electron Beams: Challenges and Opportunities.

Authors:  F Javier García de Abajo; Valerio Di Giulio
Journal:  ACS Photonics       Date:  2021-03-25       Impact factor: 7.529

6.  Chemical identification through two-dimensional electron energy-loss spectroscopy.

Authors:  Renwen Yu; F Javier García de Abajo
Journal:  Sci Adv       Date:  2020-07-08       Impact factor: 14.136

  6 in total

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