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首页> 外文期刊>Chemical Physics: A Journal Devoted to Experimental and Theoretical Research Involving Problems of Both a Chemical and Physical Nature >The charge carrier mobility's activation energies and pre-factor dependence on dopant concentration in molecularly doped polymers
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The charge carrier mobility's activation energies and pre-factor dependence on dopant concentration in molecularly doped polymers

机译:分子掺杂聚合物中的载流子迁移率的活化能和预因子对掺杂剂浓度的依赖性

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摘要

The elucidation of the charge transport mechanism in molecularly doped polymers MDP has been confused by disagreement on the role of disorder, which has led to disagreement on how to analyze the experimental mobility data. Plotting the mobility vs. T-1 or T-2 where T is temperature gives an Arrhenius activation energy or disorder energy respectively, which cannot be compared. A methodology is suggested to convert disorder energies into activation energies. This allows a compilation of a list of the activation energies of all MDP's which have been characterized as a function of dopant concentration and a correlation of the activation energies with material properties. In addition, it is argued that the intrinsic mobility in MDP's is activated with an activation energy that is independent of dopant concentration, and has a pre-factor which is exponential in rho, the calculated distance between dopant molecules, as expected for a hoping theory. The experimental observations of other behaviors, activation energies that depend on rho and pre-factors independent of rho, are attributed to either interactions among the dopant molecules or the failure of the lattice gas model to properly calculate rho at high dopant concentrations.
机译:分子掺杂聚合物MDP中电荷输运机理的阐明已被关于无序作用的争论所混淆,这导致了关于如何分析实验迁移率数据的争论。绘制迁移率与T-1或T-2的关系图(其中T为温度)分别给出了Arrhenius活化能或无序能,无法比较。提出了一种将无序能量转换为活化能的方法。这允许汇编所有MDP的活化能的列表,其已被表征为掺杂剂浓度的函数以及活化能与材料特性的关系。此外,有人认为,MDP的固有迁移率是由活化能激活的,该活化能与掺杂剂浓度无关,并且具有如rhop理论所预期的rho(所计算的掺杂剂分子之间的距离)呈指数关系的前因子。 。其他行为的实验观察结果表明,活化能取决于rho和独立于rho的前置因子,这归因于掺杂剂分子之间的相互作用或晶格气体模型无法正确计算高掺杂物浓度下的rho。

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