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手性给体-受体分子DCzDCN在Cu(100)上的自组装

Self-Assembly of the Chiral Donor-Acceptor Molecule DCzDCN on Cu(100).

作者信息

Ranecki Robert, Baumann Benedikt, Lach Stefan, Ziegler Christiane

机构信息

Department of Physics and Research Center OPTIMAS, RPTU Kaiserslautern-Landau, Erwin-Schroedinger-Str. 56, 67663 Kaiserslautern, Germany.

出版信息

ACS Appl Mater Interfaces. 2024 Feb 21;16(7):9108-9116. doi: 10.1021/acsami.3c16918. Epub 2024 Feb 11.

Abstract

Donor-acceptor (D-A) structured molecules are essential components of organic electronics. The respective molecular structures of these molecules and their synthesis are primarily determined by the intended area of application. Typically, D-A molecules promote charge separation and transport in organic photovoltaics or organic field-effect transistors. D-A molecules showing a larger twist angle between D and A units are, e.g., essential for the development of high internal quantum efficiency in organic light-emitting diodes. A prototypical molecule of this D-A type is DCzDCN (5-(4,6-diphenyl-1,3,5-triazine-2-yl)benzene-1,3-dinitrile). In most cases, these molecules are only investigated regarding their electronic and structural interaction in bulk aggregates but not in ultrathin films supported by a metallic substrate. Here, we present growth and electronic structure studies of DCzDCN on a Cu(100) surface. We used a complementary approach through the use of scanning tunneling microscopy/spectroscopy (STM and STS), ultraviolet/inverse photoemission spectroscopy (UPS and IPES), and single-molecule density functional theory (DFT) calculations. This method combination enabled us to investigate the adsorption geometry (STM) and the local electronic states near the Fermi energy () of a single adsorbed molecule (using STS) and to compare these data with the integral overall electronic structure of the DCzDCN/Cu(100) interface (using UPS/IPES). The orientation of the molecules with the donor part toward the substrate results in a chiral resolution at the interface due to the molecular as well as the substrate symmetry and additional strong molecular electrostatic forces induced by the charge distribution of the twisted dicarbonitrile part. Thus, the formation of various bulk-unlike homochiral structures and the appearance of hybrid interface states modify the molecular electronic properties of the DCzDCN/Cu(100) system, e.g., the transport gap by -1.3 eV compared to that of a single DCzDCN molecule. This may be useful not only for optoelectronic applications but also in organic spintronics.

摘要

供体-受体(D-A)结构分子是有机电子学的重要组成部分。这些分子各自的分子结构及其合成主要由预期的应用领域决定。通常,D-A分子在有机光伏或有机场效应晶体管中促进电荷分离和传输。例如,D和A单元之间具有较大扭转角的D-A分子对于有机发光二极管中高内部量子效率的发展至关重要。这种D-A类型的典型分子是DCzDCN(5-(4,6-二苯基-1,3,5-三嗪-2-基)苯-1,3-二腈)。在大多数情况下,这些分子仅在体聚集物中研究其电子和结构相互作用,而不在金属衬底支撑的超薄膜中研究。在此,我们展示了DCzDCN在Cu(100)表面上的生长和电子结构研究。我们通过使用扫描隧道显微镜/光谱(STM和STS)、紫外/逆光电子能谱(UPS和IPES)以及单分子密度泛函理论(DFT)计算采用了一种互补方法。这种方法组合使我们能够研究吸附几何结构(STM)以及单个吸附分子在费米能量()附近的局部电子态(使用STS),并将这些数据与DCzDCN/Cu(100)界面的整体电子结构(使用UPS/IPES)进行比较。由于分子以及衬底的对称性以及扭曲的二腈部分的电荷分布所诱导的额外强分子静电力,供体部分朝向衬底的分子取向导致界面处的手性分辨。因此,各种不同于体相的同手性结构的形成以及混合界面态的出现改变了DCzDCN/Cu(100)系统的分子电子性质,例如,与单个DCzDCN分子相比,传输能隙降低了1.3 eV。这不仅对于光电子应用可能有用,而且在有机自旋电子学中也可能有用。

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