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Surface-Confined Self-Assembly of Di-carbonitrile Polyphenyls

机译:二腈多苯基的表面约束自组装

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摘要

This Feature Article reports on the controlled formation and structure-functionality aspects of vacuum-deposited self-assembled organic and metal-organic networks at metal surfaces using ditopic linear and nonlinear molecular bricks, namely di-carbonitrile polyphenyls. Surface confined supramolecular organization of linear aromatic molecules leads to a fascinating variety of open networks. Moreover, cobalt-directed assembly of the same linear linkers reveals highly regular, open honeycomb networks with tunable pore sizes representing versatile templates for the organization of molecular guests or metal clusters and the control of supramolecular dynamers. In addition, the 2D nanopore organic networks act as arrays of quantum corrals exhibiting confinement of the surface-electronic states of the metallic substrate. A reduction of the linker symmetry leads to the formation of disordered, glassy coordination networks, which represent a structural model for amorphous materials.
机译:这篇专题文章报道了使用对位线性和非线性分子砖(即二甲腈聚苯)在金属表面真空沉积的自组装有机和金属有机网络的形成和结构功能方面的受控情况。线性芳族分子的表面受限超分子组织导致了令人着迷的开放网络。此外,相同线性连接子的钴定向组装揭示了高度规则的,开放的蜂窝网络,其孔径可调,代表了用于分子客体或金属簇的组织和控制超分子二性变体的通用模板。另外,二维纳米孔有机网络充当量子围栏的阵列,显示出对金属基底的表面电子态的限制。连接子对称性的降低导致形成无序的玻璃状配位网络,这代表了非晶态材料的结构模型。

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  • 来源
    《Advanced Functional Materials》 |2011年第7期|p.1230-1240|共11页
  • 作者单位

    Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany,Institutfur Nanotechnologie Karlsruher Institut fur Technologie D-76344 Eggenstein-Leopoldshafen, Germany;

    Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne CH-1015, Lausanne, Switzerland;

    Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany;

    Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany;

    Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne CH-1015, Lausanne, Switzerland;

    Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany;

    Institutfur Nanotechnologie Karlsruher Institut fur Technologie D-76344 Eggenstein-Leopoldshafen, Germany;

    Institute of Condensed Matter Physics Ecole Polytechnique Federale de Lausanne CH-1015, Lausanne, Switzerland;

    Department of Physics &. Astronomy University of British Columbia Vancouver, 2355 East Mall, V6T 1Z4, Vancouver, Canada,Physik Department E20 Technische Universitat Munchen D-85748 Carching, Germany;

    Institutfur Nanotechnologie Karlsruher Institut fur Technologie D-76344 Eggenstein-Leopoldshafen, Germany,IPCMS-CNRS UMR 7504 Universite de Strasbourg 23 Rue du Loess, 67034 Strasbourg, France;

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