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Giant acceleration of polaron transport by ultrafast laser-induced coherent phonons.

Hui-Min WangXin-Bao LiuShi-Qi HuDa-Qiang ChenQing ChenCui ZhangMeng-Xue GuanShengjie Zhang
Published in: Science advances (2023)
Polaron formation is ubiquitous in polarized materials, but severely hampers carrier transport for which effective controlling methods are urgently needed. Here, we show that laser-controlled coherent phonon excitation enables orders of magnitude enhancement of carrier mobility via accelerating polaron transport in a prototypical material, lithium peroxide (Li 2 O 2 ). The selective excitation of specific phonon modes, whose vibrational pattern directly overlap with the polaronic lattice deformation, can remarkably reduce the energy barrier for polaron hopping. The strong nonadiabatic couplings between the electronic and ionic subsystem play a key role in triggering the migration of polaron, via promoting phonon-phonon scattering in q space within sub-picoseconds. These results extend our understanding of polaron transport dynamics to the nonequilibrium regime and allow for optoelectronic devices with ultrahigh on-off ratio and ultrafast responsibility, competitive with those of state-of-the-art devices fabricated based on free electron transport.
Keyphrases
  • energy transfer
  • molecular dynamics
  • solid state
  • molecular dynamics simulations
  • ionic liquid
  • high resolution
  • mass spectrometry