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Dynamical simulations of charged soliton transport in conjugated polymers with the inclusion of electron-electron interactions

机译:包含电子-电子相互作用的共轭聚合物中带电孤子传输的动力学模拟

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We present numerical studies of the transport dynamics of a charged soliton in conjugated polymers under the influence of an external time-dependent electric field. All relevant electron-phonon and electron-electron interactions are nearly fully taken into account by simulating the monomer displacements with classical molecular dynamics and evolving the wave function for the pi electrons by virtue of the adaptive time-dependent density matrix renormalization group simultaneously and nonadiabatically. It is found that after a smooth turn on of the external electric field the charged soliton is accelerated at first up to a stationary constant velocity as one entity consisting of both the charge and the lattice deformation. An Ohmic region (6 mV/A <= E-0 <= 12 mV/A) where the stationary velocity increases linearly with the electric field strength is observed. The relationship between electron-electron interactions and charged soliton transport is also investigated in detail. We find that the dependence of the stationary velocity of a charged soliton on the on-site Coulomb interactions U and the nearest-neighbor interactions V is due to the extent of delocalization of the charged soliton defect.
机译:我们目前在外部时间相关的电场的影响下在共轭聚合物中带电孤子的传输动力学的数值研究。通过利用经典的分子动力学模拟单体位移,并同时且非绝热地利用自适应的时变密度矩阵重新归一化组,演化了pi电子的波函数,从而几乎充分考虑了所有相关的电子-声子和电子-电子相互作用。发现在外部电场的平稳接通之后,带电的孤子首先被加速到一个固定的恒定速度,这是一个既包含电荷又包含晶格变形的实体。观察到固定速度随电场强度线性增加的欧姆区域(6 mV / A <= E-0 <= 12 mV / A)。还详细研究了电子-电子相互作用与带电孤子传输之间的关系。我们发现带电孤子的静止速度对现场库仑相互作用U和最近邻相互作用V的依赖性是由于带电孤子缺陷的离域程度所致。

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