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理解并调控戊搭烯化合物的电子结构。

Understanding and tuning the electronic structure of pentalenides.

作者信息

Jenek Niko A, Helbig Andreas, Boyt Stuart M, Kaur Mandeep, Sanderson Hugh J, Reeksting Shaun B, Kociok-Köhn Gabriele, Helten Holger, Hintermair Ulrich

机构信息

Department of Chemistry, University of Bath Claverton Down Bath BA2 7AY UK

Institute of Inorganic Chemistry, Institute for Sustainable Chemistry & Catalysis with Boron (ICB), Julius-Maximilians-Universität Würzburg Am Hubland D-97074 Würzburg Germany

出版信息

Chem Sci. 2024 Jul 5;15(32):12765-12779. doi: 10.1039/d3sc04622b. eCollection 2024 Aug 14.

DOI:10.1039/d3sc04622b
PMID:39148775
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11323301/
Abstract

Here we report the first example of systematic tuning of the electronic properties of dianionic pentalenides through a straightforward synthetic protocol which allows the controlled variation of substituents in the 1,3,4,6-positions to produce nine new compounds, representing the largest pentalenide study to date. Both electron-withdrawing as well as electron-donating aromatics have been incorporated to achieve different polarisations of the bicyclic 10π aromatic core as indicated by characteristic H and C NMR shifts and evaluated by DFT calculations including nucleus-independent chemical shift (NICS) scans, anisotropy of the induced current density (ACID) calculations, and natural bond orbital (NBO) charge distribution analysis. The introduction of methyl substituents to the pentalenide core required positional control in the dihydropentalene precursor to avoid exocyclic deprotonation during the metalation. Frontier orbital analyses showed arylated pentalenides to be slightly weaker donors but much better acceptor ligands than unsubstituted pentalenide. The coordination chemistry potential of our new ligands has been exemplified by the straightforward synthesis of a polarised -dirhodium(i) complex.

摘要

在此,我们报告了首例通过一种简单的合成方法对二价戊搭烯负离子的电子性质进行系统调控的实例。该方法能够控制1,3,4,6位取代基的变化,从而制备出九种新化合物,这是迄今为止规模最大的戊搭烯研究。吸电子和供电子芳烃均已被引入,以实现双环10π芳香核的不同极化,这通过特征性的氢和碳核磁共振位移得以体现,并通过包括非独立化学位移(NICS)扫描、感应电流密度各向异性(ACID)计算以及自然键轨道(NBO)电荷分布分析在内的密度泛函理论计算进行评估。在戊搭烯核上引入甲基取代基需要在二氢戊搭烯前体中进行位置控制,以避免金属化过程中的环外去质子化。前沿轨道分析表明,芳基化的戊搭烯负离子作为供体的能力略弱,但作为受体配体比未取代的戊搭烯负离子要好得多。我们新配体的配位化学潜力已通过一种极化的双铑(I)配合物的直接合成得以例证。

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