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弱相互作用给体-受体二元分子网络中的能级重排。

Energy level realignment in weakly interacting donor-acceptor binary molecular networks.

机构信息

Department of Physics, National University of Singapore , 2 Science Drive 3, 117542, Singapore.

出版信息

ACS Nano. 2014 Feb 25;8(2):1699-707. doi: 10.1021/nn406050e. Epub 2014 Jan 16.

Abstract

Understanding the effect of intermolecular and molecule-substrate interactions on molecular electronic states is key to revealing the energy level alignment mechanism at organic-organic heterojunctions or organic-inorganic interfaces. In this paper, we investigate the energy level alignment mechanism in weakly interacting donor-acceptor binary molecular superstructures, comprising copper hexadecafluorophthalocyanine (F16CuPc) intermixed with copper phthalocyanine (CuPc), or manganese phthalocynine (MnPc) on graphite. The molecular electronic structures have been systematically studied by in situ ultraviolet photoelectron spectroscopy (UPS) and low-temperature scanning tunneling microscopy/spectroscopy (LT-STM/STS) experiments and corroborated by density functional theory (DFT) calculations. As demonstrated by the UPS and LT-STM/STS measurements, the observed unusual energy level realignment (i.e., a large downward shift in donor HOMO level and a corresponding small upward shift in acceptor HOMO level) in the CuPc-F16CuPc binary superstructures originates from the balance between intermolecular and molecule-substrate interactions. The enhanced intermolecular interactions through the hydrogen bonding between neighboring CuPc and F16CuPc can stabilize the binary superstructures and modify the local molecular electronic states. The obvious molecular energy level shift was explained by gap-state-mediated interfacial charge transfer.

摘要

了解分子间和分子-衬底相互作用对分子电子态的影响,是揭示有机-有机异质结或有机-无机界面能级排列机制的关键。在本文中,我们研究了由铜十六氟酞菁(F16CuPc)与铜酞菁(CuPc)或锰酞菁(MnPc)在石墨上混合而成的弱相互作用给体-受体二元分子超结构中的能级排列机制。通过原位紫外光电子能谱(UPS)和低温扫描隧道显微镜/光谱(LT-STM/STS)实验系统地研究了分子电子结构,并结合密度泛函理论(DFT)计算进行了验证。正如 UPS 和 LT-STM/STS 测量所表明的,在 CuPc-F16CuPc 二元超结构中观察到的不寻常能级重新排列(即供体 HOMO 能级大幅向下移动,而受体 HOMO 能级相应地向上移动)源于分子间和分子-衬底相互作用之间的平衡。通过相邻 CuPc 和 F16CuPc 之间氢键形成的增强的分子间相互作用可以稳定二元超结构并修饰局部分子电子态。通过隙态介导的界面电荷转移来解释明显的分子能级移动。

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