具有非常高偶极矩的单分子硫醇层显示出令人惊讶的小功函数变化

IF 3.2 3区 化学 Q2 CHEMISTRY, PHYSICAL
Michael Gärtner, Michael Zharnikov* and Andreas Terfort*, 
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引用次数: 0

摘要

本文将分子自组装中最近引入的分布偶极子概念与标准的偶极尾群修饰相结合,应用于自组装单层材料表面和界面的静电工程中。为此,巯基锚定分子在其分子骨架中含有偶极的2,5 ' -联嘧啶单元,用腈或二甲胺尾基修饰,并组装在Au(111)上。分布偶极子和尾群偶极子的方向与锚向上或向下对齐,以达到对基材功函数(WF)的最大影响。用几种互补的光谱工具对这些sam进行了表征,数据表明它们具有致密的分子堆积,高度的取向有序,只有轻微的分子倾斜,并且大多数分子具有硫代金锚定。同时,在二甲胺的情况下,用尾部基团修饰联嘧啶硫醇不仅不能增加WF,甚至会产生不利的影响。根据对现有数据的分析,对这一结果最可能的解释是,sam中部分分子的方向是颠倒的,对应于它们相对于标准硫化物锚定结构翻转180°。这种翻转的驱动力是与形成sam的分子之间的强偶极子-偶极子相互作用相关的能量最小化。虽然是负的,但这一结果有助于进一步合理设计用于WF调节的功能分子,这是有机电子学和光伏学中的一个重要问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Monolayers of Thiols with Very High Dipole Moments Show Surprisingly Small Work Function Changes

A recently introduced concept of distributed dipoles in molecular self-assembly was combined with the standard dipolar tail group decoration in the context of the electrostatic engineering of surfaces and interfaces by self-assembled monolayers (SAMs). To this end, thiol-anchored molecules, containing dipolar 2,5′-bipyrimidine units within their molecular backbones, were decorated with either nitrile or dimethylamino tail groups and assembled on Au(111). The directions of the distributed and tail group dipoles were aligned either upward or downward to the anchor to achieve the maximum effect on the work function (WF) of the substrate. The SAMs were characterized by several complementary spectroscopic tools, with the data suggesting a dense molecular packing, a high degree of orientational order with only slight molecular inclination, and thiolate-gold anchoring for most of the molecules. At the same time, it turned out that the decoration of the bipyrimidine thiols with the tail groups not only provided no WF gain but even had a detrimental effect in the dimethylamino case. The most likely explanation for this outcome, based on the analysis of the available data, is the upside-down orientation of a part of the molecules in the SAMs, corresponding to their flip by 180° with respect to the standard thiolate anchoring configuration. The driving force of such a flip is the minimization of the energy associated with the strong dipole–dipole interaction between the SAM-forming molecules. Although being negative, this result can help in further rational design of functional molecules for WF adjustment, which is an important issue in organic electronics and photovoltaics.

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来源期刊
The Journal of Physical Chemistry C
The Journal of Physical Chemistry C 化学-材料科学:综合
CiteScore
6.50
自引率
8.10%
发文量
2047
审稿时长
1.8 months
期刊介绍: The Journal of Physical Chemistry A/B/C is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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