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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Understanding the Properties of Tailor-Made Self-Assembled Monolayers with Embedded Dipole Moments for Interface Engineering
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Understanding the Properties of Tailor-Made Self-Assembled Monolayers with Embedded Dipole Moments for Interface Engineering

机译:了解具有嵌入式偶极矩阵的嵌入式偶极矩阵的定制自组装单层的性质

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摘要

Self-assembled monolayers (SAMs) are frequently used for interfacial dipole engineering in organic electronics and photovoltaics. This is mostly done by the attachment of dipolar tail groups onto the molecular backbone of the SAM precursors. The alternative concept of embedded dipoles involves the incorporation of polar group(s) into the backbone. This allows one to decouple the tuning of the electrostatic properties of the SAM from the chemical identity of the SAM-ambient interface. Here we present design and synthesis of particularly promising SAM precursors utilizing this concept. These precursors feature the thiol-docking group and a short heteroaromatic backbone, consisting of a nonpolar phenyl ring and a polar pyrimidine group, embedded in two opposite orientations. Packing density, molecular orientation, structure, and wetting properties of the SAMs on Au substrates are found to be nearly independent of their chemical structure, as shown by a variety of complementary experimental techniques. A further important property of the studied SAMs is their good electrical conductivity, enabling their application as electrode modifiers for low-contact resistances in organic electronic devices. Of particular interest are also the electronic properties of the SAMs, which were monitored by Kelvin probe and high-resolution X-ray photoelectron spectroscopy measurements. To obtain a fundamental understanding of these properties at an atomistic level, the experiments were combined with state-of-the-art band structure calculations. These not only confirm the structural properties of the films but also explain how the C is core-level binding energies of the various atoms are controlled by their chemical environments in conjunction with the local distribution of the electrostatic potential within the monolayer.
机译:自组装单层(SAMS)经常用于有机电子和光伏中的界面偶极工程。这主要是通过将偶极尾部组连接到SAM前体的分子骨架上来完成的。嵌入偶极子的替代概念涉及将极性组掺入骨干。这允许人们从SAM - 环境界面的化学标识中分离SAM的静电特性。在这里,我们目前了利用这一概念的特别有前边的设计和合成。这些前体具有硫醇对接基团和短杂芳族骨架,由非极性苯环和极性嘧啶基团组成,嵌入两个相对的取向。发现SAMS上的填充密度,分子取向,结构和润湿性质在Au底物上几乎独立于它们的化学结构,如各种互补的实验技术所示。所研究的SAM的另一个重要性质是它们的电导率良好,使其作为有机电子设备中的低接触电阻的电极改性剂的应用。特别感兴趣的是SAMS的电子性质,其被海尔文探针和高分辨率X射线光电子能谱测量监测。为了在原子水平处获得对这些性质的基本理解,实验与最先进的带结构计算相结合。这些不仅确认了薄膜的结构性,而且解释了C是如何通过其化学环境的各种原子的核心级结合能量与单层静电电位的局部分布相结合。

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    Goethe Univ Frankfurt Inst Anorgan &

    Analyt Chem Max von Laue Str 7 D-60438 Frankfurt Germany;

    Heidelberg Univ Angew Phys Chem Neuenheimer Feld 253 D-69120 Heidelberg Germany;

    Graz Univ Technol NAWI Graz Inst Solid State Phys Petersgasse 16 A-8010 Graz Austria;

    Joanneum Res Forsch Gesell Mat Inst Surface Technol &

    Photon Franz Pichler Str 30 A-8160 Weiz Austria;

    Goethe Univ Frankfurt Inst Anorgan &

    Analyt Chem Max von Laue Str 7 D-60438 Frankfurt Germany;

    Goethe Univ Frankfurt Inst Anorgan &

    Analyt Chem Max von Laue Str 7 D-60438 Frankfurt Germany;

    Goethe Univ Frankfurt Inst Anorgan &

    Analyt Chem Max von Laue Str 7 D-60438 Frankfurt Germany;

    Goethe Univ Frankfurt Inst Anorgan &

    Analyt Chem Max von Laue Str 7 D-60438 Frankfurt Germany;

    Joanneum Res Forsch Gesell Mat Inst Surface Technol &

    Photon Franz Pichler Str 30 A-8160 Weiz Austria;

    Graz Univ Technol NAWI Graz Inst Solid State Phys Petersgasse 16 A-8010 Graz Austria;

    Goethe Univ Frankfurt Inst Anorgan &

    Analyt Chem Max von Laue Str 7 D-60438 Frankfurt Germany;

    Heidelberg Univ Angew Phys Chem Neuenheimer Feld 253 D-69120 Heidelberg Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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