Wang Hui-Min, Liu Xin-Bao, Hu Shi-Qi, Chen Da-Qiang, Chen Qing, Zhang Cui, Guan Meng-Xue, Meng Sheng
Beijing National Laboratory for Condensed Matter Physics and Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
School of Physical Sciences, University of Chinese Academy of Sciences, Beijing 100190, China.
Sci Adv. 2023 Aug 18;9(33):eadg3833. doi: 10.1126/sciadv.adg3833. Epub 2023 Aug 16.
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 (LiO). 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 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.
极化子的形成在极化材料中普遍存在,但严重阻碍了载流子传输,因此迫切需要有效的控制方法。在此,我们表明,激光控制的相干声子激发通过加速典型材料过氧化锂(LiO)中的极化子传输,使载流子迁移率提高了几个数量级。特定声子模式的选择性激发,其振动模式与极化子晶格变形直接重叠,可以显著降低极化子跳跃的能量势垒。电子和离子子系统之间强大的非绝热耦合在触发极化子迁移中起关键作用,通过在亚皮秒内促进空间中的声子-声子散射。这些结果将我们对极化子传输动力学的理解扩展到非平衡状态,并使得具有超高开关比和超快响应速度的光电器件成为可能,与基于自由电子传输制造的最先进器件相媲美。