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共轭聚合物中无序、聚集和电荷输运的一般关系。

A general relationship between disorder, aggregation and charge transport in conjugated polymers.

机构信息

1] Department of Applied Physics, Stanford University, Stanford, California 94305, USA [2] [3].

出版信息

Nat Mater. 2013 Nov;12(11):1038-44. doi: 10.1038/nmat3722. Epub 2013 Aug 4.

Abstract

Conjugated polymer chains have many degrees of conformational freedom and interact weakly with each other, resulting in complex microstructures in the solid state. Understanding charge transport in such systems, which have amorphous and ordered phases exhibiting varying degrees of order, has proved difficult owing to the contribution of electronic processes at various length scales. The growing technological appeal of these semiconductors makes such fundamental knowledge extremely important for materials and process design. We propose a unified model of how charge carriers travel in conjugated polymer films. We show that in high-molecular-weight semiconducting polymers the limiting charge transport step is trapping caused by lattice disorder, and that short-range intermolecular aggregation is sufficient for efficient long-range charge transport. This generalization explains the seemingly contradicting high performance of recently reported, poorly ordered polymers and suggests molecular design strategies to further improve the performance of future generations of organic electronic materials.

摘要

共轭聚合物链具有许多构象自由度,彼此相互作用较弱,导致在固态中呈现复杂的微观结构。由于在各种长度尺度上电子过程的贡献,理解在具有非晶态和有序相且有序程度不同的这类体系中电荷输运非常困难。由于这些半导体具有不断增长的技术吸引力,因此对于材料和工艺设计而言,这些基本认识极其重要。我们提出了一种统一的模型,用于解释载流子在共轭聚合物薄膜中的输运方式。我们表明,在高分子量半导体聚合物中,限制电荷输运的步骤是由晶格无序引起的俘获,而短程分子间聚集对于有效的长程电荷输运就足够了。这种推广解释了最近报道的无序性聚合物表现出的高性能与看似矛盾的现象,并提出了分子设计策略,以进一步提高下一代有机电子材料的性能。

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