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Microscopic properties of ionic liquid/organic semiconductor interfaces revealed by molecular dynamics simulations

机译:分子动力学模拟显示离子液/有机半导体界面的微观性能

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Electric double-layer transistors based on ionic liquid/organic semiconductor interfaces have been extensively studied during the past decade because of their high carrier densities at low operation voltages. Microscopic structures and the dynamics of ionic liquids likely determine the device performance; however, knowledge of these is limited by a lack of appropriate experimental tools. In this study, we investigated ionic liquid/organic semiconductor interfaces using molecular dynamics to reveal the microscopic properties of ionic liquids. The organic semiconductors include pentacene, rubrene, fullerene, and 7,7,8,8-tetracyanoquinodimethane (TCNQ). While ionic liquids close to the substrate always form the specific layered structures, the surface properties of organic semiconductors drastically alter the ionic dynamics. Ionic liquids at the fullerene interface behave as a two-dimensional ionic crystal because of the energy gain derived from the favorable electrostatic interaction on the corrugated periodic substrate.
机译:由于低操作电压的高载体密度,在过去十年中,基于离子液体/有机半导体接口的电双层晶体管已被广泛研究。微观结构和离子液体的动力学可能决定了装置性能;然而,知识受到缺乏适当的实验工具的限制。在这项研究中,我们使用分子动力学研究了离子液体/有机半导体界面,以揭示离子液体的微观性质。有机半导体包括五苯,杂环烯,富勒烯和7,7,8,8-四环喹甲烷(TCNQ)。虽然靠近基板的离子液体总是形成特定的层状结构,但有机半导体的表面性质大大改变离子动力学。富勒烯界面处的离子液体表现为二维离子晶体,因为能量增益源于波纹周期性衬底上的良好静电相互作用。

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