Chirality-Dependent Electron-Hole Asymmetry in Single-Walled Carbon Nanotubes Probed by Direct Observation of Transverse Quasi-Dark Excitons

ORAL

Abstract

We studied the electron-hole (e-h) asymmetry between valence and conduction bands in single-walled carbon nanotubes (SWNTs) through the direct observation of spin-singlet transverse dark excitons using polarized photoluminescence excitation spectroscopy. The intrinsic e-h asymmetry lifts the degeneracy of the transverse exciton wavefunctions at two equivalent K and K' valleys in momentum space, which gives finite oscillator strength to transverse dark exciton states. Chirality-dependent spectral weight transfer to transverse dark states was clearly observed, indicating that the degree of the e-h asymmetry depends on the specific nanotube structure. Based on comparison between theoretical and experimental results, we evaluated the band asymmetry parameters in graphene and various carbon nanotube structures.

*One of the authors (YM) was financially supported by JSPS (No. 20-3712)

Authors

  • Yuhei Miyauchi

    • Columbia University and Kyoto University
  • Hiroshi Ajiki

    • Osaka University
  • Shigeo Maruyama

    • The University of Tokyo