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Dehalogenation and Coupling of a Polycyclic Hydrocarbon on an Atomically Thin Insulator

机译:原子薄型绝缘子上多环烃的脱卤和偶联

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摘要

Catalytic activity is of pivotal relevance in enabling efficient and selective synthesis processes. Recently, covalent coupling reactions catalyzed by solid metal surfaces opened the rapidly evolving field of on-surface chemical synthesis. Tailored molecular precursors in conjunction with the catalytic activity of the metal substrate allow the synthesis of novel, technologically highly relevant materials such as atomically precise graphene nanoribbons. However, the reaction path on the metal substrate remains unclear in most cases, and the intriguing question is how a specific atomic configuration between reactant and catalyst controls the reaction processes. In this study, we cover the metal substrate with a monolayer of hexagonal boron nitride (h-BN), reducing the reactivity of the metal, and gain unique access to atomistic details during the activation of a polyphenylene precursor by sequential dehalogenation and the subsequent coupling to extended oligomers. We use scanning tunneling microscopy and density functional theory to reveal a reaction site anisotropy, induced by the registry mismatch between the precursor and the nanostructured h-BN monolayer.
机译:催化活性对于实现有效和选择性的合成过程至关重要。近来,由固体金属表面催化的共价偶联反应打开了表面化学合成的迅速发展的领域。量身定制的分子前体与金属基材的催化活性相结合,可以合成技术上高度相关的新型材料,例如原子精确的石墨烯纳米带。然而,在大多数情况下,金属基材上的反应路径仍然不清楚,有趣的问题是反应物和催化剂之间的特定原子构型如何控制反应过程。在这项研究中,我们用六方氮化硼(h-BN)的单层覆盖金属基底,降低了金属的反应性,并在通过顺序脱卤作用和随后的偶联作用激活聚苯撑前体期间获得了对原子细节的唯一访问权扩展低聚物。我们使用扫描隧道显微镜和密度泛函理论揭示由前驱物和纳米结构的h-BN单层之间的注册表不匹配引起的反应位点各向异性。

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