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首页> 外文期刊>The Journal of Chemical Physics >A unified theory for charge-carrier transport in organic crystals
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A unified theory for charge-carrier transport in organic crystals

机译:有机晶体中载流子传输的统一理论

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To characterize the crossover from bandlike transport to hopping transport in molecular crystals, we study a microscopic model that treats electron-phonon interactions explicitly. A finite-temperature variational method combining Merrifield's transformation with Bogoliubov's theorem is developed to obtain the optimal basis for an interacting electron-phonon system, which is then used to calculate the bandlike and hopping mobilities for charge carriers. Our calculations on the one dimensional (1D) Holstein model at T=0 K and finite temperatures show that the variational basis gives results that compared favorably to other analytical methods. We also study the structures of polaron states at a broad range of parameters including different temperatures. Furthermore, we calculate the bandlike and hopping mobilities of the 1D Holstein model in different parameters and show that our theory predicts universal power-law decay at low temperatures and an almost temperature independent behavior at higher temperatures, in agreement with experimental observations. In addition, we show that as the temperature increases, hopping transport can become dominant even before the polaron state changes its character. Thus, our result indicates that the self-trapping transition studied in conventional polaron theories does not necessarily correspond to the bandlike to hopping transition in the transport properties in organic molecular crystals. Finally, a comparison of our 1D results with experiments on ultrapure naphthalene crystals suggests that the theory can describe the charge-carrier mobilities quantitatively across the whole experimental temperature range.
机译:为了表征分子晶体中从带状传输到跳跃传输的交叉,我们研究了一个显式处理电子-声子相互作用的微观模型。提出了一种将Merrifield变换与Bogoliubov定理相结合的有限温度变分方法,以获得相互作用的电子-声子系统的最佳基础,然后将其用于计算电荷载流子的带状和跳跃迁移率。我们在T = 0 K和有限温度下对一维(1D)Holstein模型进行的计算表明,变分基础得出的结果优于其他分析方法。我们还研究了包括不同温度在内的各种参数下的极化子态结构。此外,我们计算了一维荷斯坦模型在不同参数下的带状和跳跃迁移率,并表明我们的理论预测了低温下的通用幂律衰减和高温下几乎与温度无关的行为,这与实验观察一致。此外,我们表明,随着温度的升高,甚至在极化子状态改变其特性之前,跳变传输就可以成为主导。因此,我们的结果表明,在常规极化子理论中研究的自陷跃迁并不一定与有机分子晶体的传输特性中的带状跃迁跃迁相对应。最后,将我们的一维结果与超纯萘晶体的实验结果进行比较表明,该理论可以定量描述整个实验温度范围内的载流子迁移率。

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