Manipulating polaron transport via laser-induced coherent phonons

Ultrafast photoexcitation is an efficient method to manipulate the dynamics of (quasi) particles under non-equilibrium conditions. However, most of the previous ultrafast experiments were limited to characterizing the polaron formation process, and only speculations about the polaron transport mechanism were presented. Theoretical studies based on the adiabatic approximation can only reveal the static and thermal-dynamic properties of polarons.

Wang Huimin and Liu Xinbao and colleagues in Prof. Meng Sheng's group from the Institute of Physics of the Chinese Academy of Sciences have discovered that laser-driven coherent phonons enable an order-of-magnitude increase in polaron mobility. The study, titled "Giant acceleration of polaron transport by ultrafast laser-induced coherent phonons," was published in Science Advances.

They found that the selective excitation of specific vibrational modes effectively reduces the energy barrier of polaron hopping.

Due to the strong non-adiabatic couplings between electronic and ionic subsystems, phonon–phonon scattering in q space occurs rapidly within sub-picoseconds, triggering the migration of polaronic deformations. The in the prototypical polaronic material Li2O2 can be increased by eight orders of magnitude by tuning the laser parameters, much more efficiently than thermal effects.

Laser-controlled polaron transfer and its potential applications. Credit: Institute of Physics

Effects of coherent phonon excitation on polaron transport. Credit: Institute of Physics

Nonadiabatic effect during polaron transfer. Credit: Institute of Physics