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无机累积多烯的合成、几何结构和电子结构

Syntheses, Geometric and Electronic Structures of Inorganic Cumulenes.

作者信息

Tang Jianqin, Hu Chenyang, Crumpton Agamemnon E, Dietz Maximilian, Sarkar Debotra, Griffin Liam P, Goicoechea Jose M, Aldridge Simon

机构信息

Inorganic Chemistry Laboratory, Department of Chemistry, University of Oxford, South Parks Road, Oxford, OX1 3QR, United Kingdom.

Department of Chemistry, Indiana University, 800 E. Kirkwood Ave, Bloomington, Indiana 47405, United States.

出版信息

J Am Chem Soc. 2024 Nov 13;146(45):30778-30783. doi: 10.1021/jacs.4c13231. Epub 2024 Nov 4.

Abstract

Molecular chains of two-coordinate carbon atoms (cumulenes) have long been targeted, due to interest in the electronic structure and applications of extended π-systems, and their relationship to the carbon allotrope, carbyne. While formal (isoelectronic) B═N for C═C substitution has been employed in two-dimensional (2-D) materials, unsaturated one-dimensional all-inorganic "molecular wires" are unknown. Here, we report high-yielding synthetic approaches to heterocumulenes containing a five-atom BNBNB chain, the geometric structure of which can be modified by choice of end group. The diamido-capped system is bent at the 2-/4-positions, and natural resonance theory calculations reveal significant contributions from B═N(:)-B≡N-B resonance forms featuring a lone pair at N (consistent with observed N-centered nucleophilicity). Molecular modification to generate a linear system best described by a B═N═B═N═B resonance structure involves chemical transformation of the capping groups (using B(CF)) to enhance their π-acidity and conjugate the N-lone pairs.

摘要

由于对扩展π体系的电子结构和应用以及它们与碳同素异形体卡宾的关系感兴趣,双配位碳原子的分子链(累积烯烃)长期以来一直是研究目标。虽然在二维(2-D)材料中已采用用B═N形式(等电子体)替代C═C,但不饱和一维全无机“分子线”尚不存在。在此,我们报告了一种高产率的合成方法,用于制备含有五原子BNBNB链的杂累积烯烃,其几何结构可通过端基的选择进行修饰。二氨基封端的体系在2-/4-位弯曲,自然共振理论计算表明,B═N(:)-B≡N-B共振形式对其有显著贡献,该共振形式在N处有孤对电子(与观察到的以N为中心的亲核性一致)。生成最佳由B═N═B═N═B共振结构描述的线性体系的分子修饰涉及封端基团的化学转化(使用B(CF)),以增强其π酸性并使N孤对电子共轭。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4686/11565641/e75164f42aa2/ja4c13231_0001.jpg

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