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控制表面脱氢芳基-芳基键形成的反应性和区域选择性。

Control of Reactivity and Regioselectivity for On-Surface Dehydrogenative Aryl-Aryl Bond Formation.

机构信息

Institute of Experimental and Applied Physics, University of Regensburg , 93053 Regensburg, Germany.

Department of Chemistry and Biochemistry, University of Bern , 3012 Bern, Switzerland.

出版信息

J Am Chem Soc. 2016 May 4;138(17):5585-93. doi: 10.1021/jacs.5b13461. Epub 2016 Apr 20.

Abstract

Regioselectivity is of fundamental importance in chemical synthesis. Although many concepts for site-selective reactions are well established for solution chemistry, it is not a priori clear whether they can easily be transferred to reactions taking place on a metal surface. A metal will fix the chemical potential of the electrons and perturb the electronic states of the reactants because of hybridization. Additionally, techniques to characterize chemical reactions in solution are generally not applicable to on-surface reactions. Only recent developments in resolving chemical structures by atomic force microscopy (AFM) and scanning tunneling microscopy (STM) paved the way for identifying individual reaction products on surfaces. Here we exploit a combined STM/AFM technique to demonstrate the on-surface formation of complex molecular architectures built up from a heteroaromatic precursor, the tetracyclic pyrazino[2,3-f][4,7]phenanthroline (pap) molecule. Selective intermolecular aryl-aryl coupling via dehydrogenative C-H activation occurs on Au(111) upon thermal annealing under ultrahigh vacuum (UHV) conditions. A full atomistic description of the different reaction products based on an unambiguous discrimination between pyrazine and pyridine moieties is presented. Our work not only elucidates that ortho-hydrogen atoms of the pyrazine rings are preferentially activated over their pyridine equivalents, but also sheds new light onto the participation of substrate atoms in metal-organic coordination bonding during covalent C-C bond formation.

摘要

区域选择性在化学合成中具有重要意义。尽管许多针对溶液化学的选择性反应的概念已经得到很好的确立,但不能先验地确定它们是否可以轻易地转移到发生在金属表面上的反应中。金属会固定电子的化学势,并由于杂化而扰动反应物的电子态。此外,用于在溶液中表征化学反应的技术通常不适用于表面反应。只有原子力显微镜(AFM)和扫描隧道显微镜(STM)在解析化学结构方面的最新发展为在表面上识别单个反应产物铺平了道路。在这里,我们利用 STM/AFM 技术来证明复杂分子结构的表面形成,这些结构是由杂芳族前体,四环吡嗪并[2,3-f][4,7]菲咯啉(pap)分子构建的。在超高真空(UHV)条件下进行热退火时,通过脱氢 C-H 活化,选择性地发生分子间的芳基-芳基偶联。基于对吡嗪和吡啶部分之间的明确区分,提出了基于原子级描述的不同反应产物的完全描述。我们的工作不仅阐明了吡嗪环的邻位氢原子优先于其吡啶等价物被活化,而且还揭示了在形成共价 C-C 键时,底物原子参与金属有机配位键合的情况。

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