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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Surface Viscoelasticity of an Organic InterLayer Affects the Crystalline Nanostructure of an Organic Semiconductor and Its Electrical Performance
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Surface Viscoelasticity of an Organic InterLayer Affects the Crystalline Nanostructure of an Organic Semiconductor and Its Electrical Performance

机译:有机夹层的表面粘弹性影响有机半导体的晶体纳米结构及其电性能

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摘要

We demonstrated that the viscoelasticity of a dielectric surface affected the overlying pentacene crystalline nanostructures and the electrical performances of pentacene-based field-effect transistors (FETs). The surface viscoelastic-ities of the gate dielectrics were systematically controlled by varying the polymer chain lengths of polystyrene brushes (b-PSs) and the substrate temperature during pentacene deposition. The b-PSs were chosen as a model surface because the glass-liquid transition affected neither the surface energy nor the surface roughness. Moreover, the glass-liquid transition temperature increased with increasing b-PS chain length. The liquid-like b-PS chains disturbed the surface arrangement of the pentacene molecules, which reduced the organization of the crystalline structures, yielding smaller grains during the early stages of pentacene growth. The dramatic changes in the film morphology and crystalline nanostructures above the b-PS glass-liquid transition resulted in noticeable changes in the OFET performance. The systematic investigation of the dielectric surface viscoelasticity presented here provides a significant step toward optimizing the nanostructures of organic semiconductors, and thereby, the device performance, by engineering the interfaces in the OFETs.
机译:我们证明了介电表面的粘弹性会影响上面的并五苯晶体纳米结构和基于并五苯的场效应晶体管(FET)的电性能。通过在并五苯沉积过程中改变聚苯乙烯刷(b-PSs)的聚合物链长和基底温度,系统地控制了栅极电介质的表面粘弹性。选择b-PSs作为模型表面,因为玻璃-液体转变既不影响表面能也不影响表面粗糙度。而且,玻璃-液体转变温度随着b-PS链长度的增加而增加。液体状的b-PS链扰乱了并五苯分子的表面排列,这减少了并五苯晶体结构,在并五苯生长的早期阶段产生了较小的晶粒。在b-PS玻璃-液体转变之上的膜形态和晶体纳米结构的急剧变化导致OFET性能的显着变化。本文介绍的介电表面粘弹性的系统研究为优化有机半导体的纳米结构,从而通过设计OFET中的界面,从而优化了器件性能,迈出了重要的一步。

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