4.8 Article

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

Journal

NATURE COMMUNICATIONS
Volume 12, Issue 1, Pages -

Publisher

NATURE RESEARCH
DOI: 10.1038/s41467-021-21452-5

Keywords

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Funding

  1. National Key R&D Program of China [2019YFA0708200, 2016YFA0300903]
  2. National Natural Science Foundation of China [11974023, 52021006, 12004010]
  3. Key-Area Research and Development Program of Guangdong Province [2018B030327001, 2018B010109009]
  4. National Equipment Program of China [ZDYZ2015-1]
  5. 2011 Program from the Peking-Tsinghua-IOP Collaborative Innovation Center of Quantum Matter
  6. Youth Innovation Promotion Association, CAS

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Mapping local phonon dispersion in individual nanostructures reveals their thermal, optical, and mechanical properties but requires high detection sensitivity.
Directly mapping local phonon dispersion in individual nanostructures can advance our understanding of their thermal, optical, and mechanical properties. However, this requires high detection sensitivity and combined spatial, energy and momentum resolutions, thus has been elusive. Here, we demonstrate a four-dimensional electron energy loss spectroscopy technique, and present position-dependent phonon dispersion measurements in individual boron nitride nanotubes. By scanning the electron beam in real space while monitoring both the energy loss and the momentum transfer, we are able to reveal position- and momentum-dependent lattice vibrations at nanometer scale. Our measurements show that the phonon dispersion of multi-walled nanotubes is locally close to hexagonal-boron nitride crystals. Interestingly, acoustic phonons are sensitive to defect scattering, while optical modes are insensitive to small voids. This work not only provides insights into vibrational properties of boron nitride nanotubes, but also demonstrates potential of the developed technique in nanoscale phonon dispersion measurements. Mapping local phonon dispersion in individual nanostructures reveals their thermal, optical, and mechanical properties but requires high detection sensitivity. Here, the authors present position-dependent phonon dispersion measurements in individual boron nitride nanotubes.

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