Research paperExperimental CharacterizationComputed PhononTheoreticalSystematic Absences of Optical Phonon Modes in Phonon Dispersion Measured by Electron MicroscopyAowen Li, Paul Zeiger, Zuxian He, Mingquan Xu et al.2024·10.1103/physrevlett.133.046101·arXiv:2402.11275AbstractPhonon dispersion is widely used to elucidate the vibrational properties of materials. As an emerging technique, momentum-resolved vibrational spectroscopy in scanning transmission electron microscopy (STEM) offers an unparalleled approach to explore q-dependent phonon behavior at local structures. In this study, we systematically investigate the phonon dispersion of monolayer graphene across several Brillouin zones (BZs) using momentum-resolved vibrational spectroscopy and find that the optical phonon signals vanish at the Γ points with indices (hk0) satisfying h + 2k = 3n (n integers). Theoretical analysis reveals that the observed phenomena arise from the complete destructive interference of the scattered waves from different basis atoms. This observation, corroborated by the study of diamond, should be a general characteristic of materials composed of symmetrically equivalent pairs of the same elements. Moreover, our results emphasize the importance of multiple scattering in interpreting the vibrational signals in bulk materials.Read more
Monolayer graphene specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization2 properties2 figuresExperimentalCStudied MaterialExpand
Diamond specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization1 figureExperimentalCStudied MaterialExpand
Simulated graphene vibrational spectrum using FRFPMS with experimental parameters.1 characterization2 properties1 figureSimulated Supercell DftCStudied MaterialExpand
Simulated diamond vibrational spectrum using FRFPMS with experimental parameters.1 characterization1 figureSimulated Supercell DftCStudied MaterialExpand
Research paperExperimental CharacterizationComputed PhononTheoreticalSystematic Absences of Optical Phonon Modes in Phonon Dispersion Measured by Electron MicroscopyAowen Li, Paul Zeiger, Zuxian He, Mingquan Xu et al.2024·10.1103/physrevlett.133.046101·arXiv:2402.11275AbstractPhonon dispersion is widely used to elucidate the vibrational properties of materials. As an emerging technique, momentum-resolved vibrational spectroscopy in scanning transmission electron microscopy (STEM) offers an unparalleled approach to explore q-dependent phonon behavior at local structures. In this study, we systematically investigate the phonon dispersion of monolayer graphene across several Brillouin zones (BZs) using momentum-resolved vibrational spectroscopy and find that the optical phonon signals vanish at the Γ points with indices (hk0) satisfying h + 2k = 3n (n integers). Theoretical analysis reveals that the observed phenomena arise from the complete destructive interference of the scattered waves from different basis atoms. This observation, corroborated by the study of diamond, should be a general characteristic of materials composed of symmetrically equivalent pairs of the same elements. Moreover, our results emphasize the importance of multiple scattering in interpreting the vibrational signals in bulk materials.Read more
Monolayer graphene specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization2 properties2 figuresExperimentalCStudied MaterialExpand
Diamond specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization1 figureExperimentalCStudied MaterialExpand
Simulated graphene vibrational spectrum using FRFPMS with experimental parameters.1 characterization2 properties1 figureSimulated Supercell DftCStudied MaterialExpand
Simulated diamond vibrational spectrum using FRFPMS with experimental parameters.1 characterization1 figureSimulated Supercell DftCStudied MaterialExpand
Research paperExperimental CharacterizationComputed PhononTheoreticalSystematic Absences of Optical Phonon Modes in Phonon Dispersion Measured by Electron MicroscopyAowen Li, Paul Zeiger, Zuxian He, Mingquan Xu et al.2024·10.1103/physrevlett.133.046101·arXiv:2402.11275AbstractPhonon dispersion is widely used to elucidate the vibrational properties of materials. As an emerging technique, momentum-resolved vibrational spectroscopy in scanning transmission electron microscopy (STEM) offers an unparalleled approach to explore q-dependent phonon behavior at local structures. In this study, we systematically investigate the phonon dispersion of monolayer graphene across several Brillouin zones (BZs) using momentum-resolved vibrational spectroscopy and find that the optical phonon signals vanish at the Γ points with indices (hk0) satisfying h + 2k = 3n (n integers). Theoretical analysis reveals that the observed phenomena arise from the complete destructive interference of the scattered waves from different basis atoms. This observation, corroborated by the study of diamond, should be a general characteristic of materials composed of symmetrically equivalent pairs of the same elements. Moreover, our results emphasize the importance of multiple scattering in interpreting the vibrational signals in bulk materials.Read more
Monolayer graphene specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization2 properties2 figuresExperimentalCStudied MaterialExpand
Diamond specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization1 figureExperimentalCStudied MaterialExpand
Simulated graphene vibrational spectrum using FRFPMS with experimental parameters.1 characterization2 properties1 figureSimulated Supercell DftCStudied MaterialExpand
Simulated diamond vibrational spectrum using FRFPMS with experimental parameters.1 characterization1 figureSimulated Supercell DftCStudied MaterialExpand
Research paperExperimental CharacterizationComputed PhononTheoreticalSystematic Absences of Optical Phonon Modes in Phonon Dispersion Measured by Electron MicroscopyAowen Li, Paul Zeiger, Zuxian He, Mingquan Xu et al.2024·10.1103/physrevlett.133.046101·arXiv:2402.11275AbstractPhonon dispersion is widely used to elucidate the vibrational properties of materials. As an emerging technique, momentum-resolved vibrational spectroscopy in scanning transmission electron microscopy (STEM) offers an unparalleled approach to explore q-dependent phonon behavior at local structures. In this study, we systematically investigate the phonon dispersion of monolayer graphene across several Brillouin zones (BZs) using momentum-resolved vibrational spectroscopy and find that the optical phonon signals vanish at the Γ points with indices (hk0) satisfying h + 2k = 3n (n integers). Theoretical analysis reveals that the observed phenomena arise from the complete destructive interference of the scattered waves from different basis atoms. This observation, corroborated by the study of diamond, should be a general characteristic of materials composed of symmetrically equivalent pairs of the same elements. Moreover, our results emphasize the importance of multiple scattering in interpreting the vibrational signals in bulk materials.Read more
Monolayer graphene specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization2 properties2 figuresExperimentalCStudied MaterialExpand
Diamond specimen investigated by momentum-resolved vibrational spectroscopy in STEM.1 characterization1 figureExperimentalCStudied MaterialExpand
Simulated graphene vibrational spectrum using FRFPMS with experimental parameters.1 characterization2 properties1 figureSimulated Supercell DftCStudied MaterialExpand
Simulated diamond vibrational spectrum using FRFPMS with experimental parameters.1 characterization1 figureSimulated Supercell DftCStudied MaterialExpand