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表面控制的卤键选择性反转

Surface-controlled reversal of the selectivity of halogen bonds.

作者信息

Tschakert Jalmar, Zhong Qigang, Martin-Jimenez Daniel, Carracedo-Cosme Jaime, Romero-Muñiz Carlos, Henkel Pascal, Schlöder Tobias, Ahles Sebastian, Mollenhauer Doreen, Wegner Hermann A, Pou Pablo, Pérez Rubén, Schirmeisen André, Ebeling Daniel

机构信息

Institute of Applied Physics (IAP), Justus Liebig University Giessen, Heinrich-Buff-Ring 16, 35392, Giessen, Germany.

Center for Materials Research (LaMa), Justus Liebig University Giessen, Heinrich-Buff-Ring 16, 35392, Giessen, Germany.

出版信息

Nat Commun. 2020 Nov 6;11(1):5630. doi: 10.1038/s41467-020-19379-4.

Abstract

Intermolecular halogen bonds are ideally suited for designing new molecular assemblies because of their strong directionality and the possibility of tuning the interactions by using different types of halogens or molecular moieties. Due to these unique properties of the halogen bonds, numerous areas of application have recently been identified and are still emerging. Here, we present an approach for controlling the 2D self-assembly process of organic molecules by adsorption to reactive vs. inert metal surfaces. Therewith, the order of halogen bond strengths that is known from gas phase or liquids can be reversed. Our approach relies on adjusting the molecular charge distribution, i.e., the σ-hole, by molecule-substrate interactions. The polarizability of the halogen and the reactiveness of the metal substrate are serving as control parameters. Our results establish the surface as a control knob for tuning molecular assemblies by reversing the selectivity of bonding sites, which is interesting for future applications.

摘要

分子间卤素键因其强烈的方向性以及通过使用不同类型的卤素或分子部分来调节相互作用的可能性,非常适合用于设计新的分子组装体。由于卤素键的这些独特性质,最近已确定了众多应用领域,并且仍在不断涌现。在此,我们提出一种通过吸附到活性与惰性金属表面来控制有机分子二维自组装过程的方法。由此,气相或液相中已知的卤素键强度顺序可以被颠倒。我们的方法依赖于通过分子 - 底物相互作用来调整分子电荷分布,即σ - 空穴。卤素的极化率和金属底物的反应活性作为控制参数。我们的结果表明,表面可作为一个控制旋钮,通过颠倒键合位点的选择性来调节分子组装体,这对未来应用而言很有意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe70/7648107/e99a602e429b/41467_2020_19379_Fig1_HTML.jpg

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