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Electrostatic Properties of Ideal and Non-ideal Polar Organic Monolayers: Implications for Electronic Devices

机译:理想和非理想极性有机单层的静电性质:对电子设备的启示

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摘要

Molecules in (or as) electronic devices are attractive because the variety and flexibil-ity inherent in organic chemistry can be harnessed towards a systematic design of electrical properties. Specifically, monolayers of polar molecules introduce a net di-pole, which controls surface and interface barriers and enables chemical sensing via dipole modification. Due to the long range of electrostatic phenomena, polar monolayer properties are determined not only by the type of molecules and/or bonding configuration to the substrate, but also by size, (dis-)order, and adsorption patterns within the monolayer. Thus, a comprehensive understanding of polar monolayer characteristics and their influence on electronic devices requires an approach that transcends typical chemical designs, i.e., one that incorporates long-range effects, in addition to short-range effects due to local chemistry. We review and explain the main uses of polar organic monolayers in shaping electronic device properties, with an emphasis on long-range cooperative effects and on the differences between electrical properties of uniform and non-uniform monolayers.
机译:电子设备中(或作为电子设备)中的分子很有吸引力,因为有机化学中固有的多样性和灵活性可用于系统设计电气特性。具体而言,极性分子的单层会引入净偶极子,该偶极子可控制表面和界面势垒,并通过偶极子修饰实现化学感应。由于静电现象的范围很广,所以极性单分子层的性能不仅取决于分子的类型和/或与基底的键合构型,还取决于分子大小,(无序)和单分子层内的吸附方式。因此,要全面了解极性单层特性及其对电子设备的影响,就需要一种超越典型化学设计的方法,即除了局部化学作用引起的短程效应外,还应包含长程效应。我们回顾并解释了极性有机单层在整形电子器件特性中的主要用途,重点在于长期合作效应以及均匀和不均匀单层电特性之间的差异。

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