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通过扫描隧道显微镜观察到表面上各种大分子的通用自下而上构建。

Versatile bottom-up construction of diverse macromolecules on a surface observed by scanning tunneling microscopy.

机构信息

Surface Science Research Centre, Department of Chemistry, University of Liverpool , L69 3BX, Liverpool, U.K.

出版信息

ACS Nano. 2014 Sep 23;8(9):8856-70. doi: 10.1021/nn502388u. Epub 2014 Sep 10.

Abstract

The heterocoupling of organic building blocks to give complex multicomponent macromolecules directly at a surface holds the key to creating advanced molecular devices. While "on-surface" synthesis with prefunctionalized molecules has recently led to specific one- and two- component products, a central challenge is to discover universal connection strategies that are applicable to a wide range of molecules. Here, we show that direct activation of C-H bonds intrinsic to π-functional molecules is a highly generic route for connecting different building blocks on a copper surface. Scanning tunneling microscopy (STM) reveals that covalent π-functional macromolecular heterostructures, displaying diverse compositions, structures and topologies, are created with ease from seven distinct building blocks (including porphyrins, pentacene and perylene). By exploiting differences in C-H bond reactivity in the deposition and heating protocols we also demonstrate controlled synthesis of specific products, such as block copolymers. Further, the symmetry and geometry of the molecules and the surface also play a critical role in determining the outcome of the covalent bond forming reactions. Our "pick-mix-and-link" strategy opens up the capability to generate libraries of multivariate macromolecules directly at a surface, which in conjunction with nanoscale probing techniques could accelerate the discovery of functional interfaces.

摘要

将有机构建块杂化成复杂的多组分大分子直接在表面进行,这是创造先进分子器件的关键。虽然最近使用预官能化分子的“表面合成”已经得到了特定的单组分和双组分产物,但一个核心挑战是发现适用于广泛分子的通用连接策略。在这里,我们表明,直接激活π官能分子固有的 C-H 键是在铜表面连接不同构建块的一种高度通用的途径。扫描隧道显微镜(STM)揭示了共价π官能大分子杂化结构,容易从七个不同的构建块(包括卟啉、并五苯和苝)中创建,具有不同的组成、结构和拓扑结构。通过利用沉积和加热方案中 C-H 键反应性的差异,我们还证明了特定产物(如嵌段共聚物)的可控合成。此外,分子和表面的对称性和几何形状也在决定形成共价键的反应结果方面起着关键作用。我们的“选择-混合-连接”策略为在表面上直接生成多元大分子库开辟了可能性,结合纳米级探测技术,这可能会加速功能界面的发现。

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