简单双位氢键共轭π低聚物的结构-组装-性质关系

Asmerom O. Weldeab, Cory T. Kornman, Lei Li, D. Starkenburg, Xueying Zhao, D. E. Fagnani, Sara J. Sadovy, S. Perry, J. Xue, R. K. Castellano
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引用次数: 0

摘要

摘要设计并合成了一系列在2,2 ' -二氨基-1,3,5-三嗪(DAT)、巴比妥酸酯(B)和邻苯二肼(PH)两端功能化的简单双位氢键分子。用基态密度泛函理论计算研究了双位DAT、PH和B分子的本征电子结构。用UV-vis研究了它们的溶液吸光度,发现在邻噻吩连接剂上增加R基取代基的大小导致溶液吸光度最大值的普遍蓝移。用紫外-可见法对双位DAT和B薄膜的固态光学性质进行了评价,发现在所有情况下,固态吸光度相对于溶液吸光度都发生了红移。将三个DAT分子真空热沉积到Au(111)衬底上,并使用扫描隧道显微镜观察其形貌。观察到(DAT-T)2在表面组织成六元玫瑰花,而(DAT-TMe)2在热处理前后形成线性组合。(DAT-Toct)2呈不规则排列,而(B-TMe)2呈现多种共存的组装模式。本文提出的工作提供了基本的分子-超分子关系,可用于基于双主题氢键能力构建块的半导体材料设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structure–Assembly–Property Relationships of Simple Ditopic Hydrogen-Bonding-Capable π-Conjugated Oligomers
Abstract A series of simple ditopic hydrogen-bonding-capable molecules functionalized with 2,4-diamino-1,3,5-triazine (DAT), barbiturate (B), and phthalhydrazide (PH) on both termini of a 2,2′-bithiophene linker were designed and synthesized. The intrinsic electronic structures of the ditopic DAT, PH, and B molecules were investigated with ground-state density functional theory calculations. Their solution absorbance was investigated with UV-vis, where it was found that increasing size of R group substituents on the bithiophene linker resulted in a general blue-shift in solution absorbance maximum. The solid-state optical properties of ditopic DAT and B thin films were evaluated by UV-vis, and it was found that the solid-state absorbance was red-shifted with respect to solution absorbance in all cases. The three DAT molecules were vacuum-thermal-deposited onto Au(111) substrates and the morphologies were examined using scanning tunneling microscopy. (DAT-T)2 was observed to organize into six-membered rosettes on the surface, whereas (DAT-TMe)2 formed linear assemblies before and after thermal annealing. For (DAT-Toct)2 , an irregular arrangement was observed, while (B-TMe)2 showed several co-existent assembly patterns. The work presented here provides fundamental molecular–supramolecular relationships useful for semiconductive materials design based on ditopic hydrogen-bonding-capable building blocks.
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CiteScore
3.70
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