材料科学
堆积
有机半导体
氢键
分子间力
超分子化学
化学物理
接受者
半导体
分子
共轭体系
纳米技术
稳健性(进化)
聚合物
光电子学
有机化学
凝聚态物理
化学
基因
物理
生物化学
复合材料
作者
Paula Gómez,Stamatis Georgakopoulos,Miriam Más‐Montoya,Jesús Cerdá,Jose Pérez,Enrique Ortı́,Juan Aragó,David Curiel
标识
DOI:10.1021/acsami.0c18928
摘要
Molecular organization plays an essential role in organic semiconductors since it determines the extent of intermolecular interactions that govern the charge transport present in all electronic applications. The benefits of hydrogen bond-directed self-assembly on charge transport properties are demonstrated by comparing two analogous pyrrole-based, fused heptacyclic molecules. The rationally designed synthesis of these materials allows for inducing or preventing hydrogen bonding. Strategically located hydrogen bond donor and acceptor sites control the solid-state arrangement, favoring the supramolecular expansion of the π-conjugated surface and the subsequent π-stacking as proved by X-ray diffraction and computational calculations. The consistency observed for the performance of organic field-effect transistors and the morphology of the organic thin films corroborate that higher stability and thermal robustness are achieved in the hydrogen-bonded material.
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