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有机晶体中机电响应的定量预测。

Quantitative Prediction of the Electro-Mechanical Response in Organic Crystals.

作者信息

Landi Alessandro, Peluso Andrea, Troisi Alessandro

机构信息

Dipartimento di Chimica e Biologia, Università di Salerno, Fisciano, Salerno, I-84084, Italy.

Department of Chemistry, University of Liverpool, Liverpool, L69 3BX, UK.

出版信息

Adv Mater. 2021 Mar;33(12):e2008049. doi: 10.1002/adma.202008049. Epub 2021 Feb 17.

DOI:10.1002/adma.202008049
PMID:33598958
Abstract

Organic semiconductors' inherent flexibility makes them appealing for advanced applications such as wearable electronics, e-skins, or pressure sensors, and can even be used to enhance their intrinsic electronic properties. Unfortunately, these applications for organic materials are currently hindered by the lack of a quantitative understanding of the interplay between their electrical and mechanical properties. In this work, this gap is filled by presenting an accurate methodology able to predict quantitatively the effects of external deformation on the charge transport properties of any organic semiconductors. Three prototypical materials are investigated, showing that the experimental variation of charge carrier mobility with strain is fully reproduced, even in a wide range of deformations applied along different crystal axes. The results indicate that the intrinsic electro-mechanical response of the materials varies by orders of magnitude within the class of organic semiconductors, a difference rationalized observing that the mobility trend is primarily influenced by the transfer integrals' variation, rather than by a modification of the crystal phonons. In light of its robustness, accuracy, and low computational cost, this protocol represents an ideal tool to quantify the electro-mechanical response in new organic compounds, thus establishing a reliable route for a full exploitation of strain engineering in advanced technologies.

摘要

有机半导体固有的柔韧性使其在可穿戴电子设备、电子皮肤或压力传感器等先进应用中颇具吸引力,甚至可用于增强其固有电子特性。不幸的是,目前由于缺乏对有机材料电学和力学性能之间相互作用的定量理解,这些有机材料的应用受到了阻碍。在这项工作中,通过提出一种能够定量预测外部变形对任何有机半导体电荷传输特性影响的精确方法,填补了这一空白。研究了三种典型材料,结果表明,即使在沿不同晶轴施加的大范围变形下,电荷载流子迁移率随应变的实验变化也能得到充分再现。结果表明,在有机半导体类别中,材料的固有机电响应在数量级上有所不同,这种差异可以通过观察迁移率趋势主要受转移积分变化的影响,而不是晶体声子的改变来解释。鉴于其稳健性、准确性和低计算成本,该协议是量化新型有机化合物机电响应的理想工具,从而为在先进技术中充分利用应变工程建立了一条可靠途径。

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