Wegener Daniel, Limberg Niklas, Bubenik Moritz, Pérez-Bitrián Alberto, Wiesner Anja, Riedel Sebastian
Fachbereich Biologie, Chemie, Pharmazie, Institut für Chemie und Biochemie - Anorganische Chemie, Freie Universität Berlin, Fabeckstraße 34/36, Berlin 14195, Germany.
JACS Au. 2025 Jun 23;5(7):3565-3574. doi: 10.1021/jacsau.5c00577. eCollection 2025 Jul 28.
Lewis acids and their related weakly coordinating anions (WCAs) are central species in chemistry, and tuning their properties toward different purposes is still a challenging field of research. In this work, the properties of the Lewis acid Al-(OTe) have been investigated using the advantages of the OTeF(CF) ligand (OTe). Its Lewis acidity was evaluated by means of fluoride ion affinity (FIA) calculations, indicating that it is a Lewis superacid. Complementary analysis using the Gutmann-Beckett method by the synthesis of the Al-(OTe)·OPEt adduct rendered similar results, yet for the heavier Ga species this adduct formation was not possible, as only GaEt-(OTe)·OPEt was obtained. The reported new Lewis acid was further stabilized as acid-base adducts with tetrahydrofuran and dimethyl carbonate. The isolation of the free Lewis acid proved challenging due to fluoride abstraction from its own ligand, as shown by quantum-chemical calculations. Derived from the Lewis superacid Al-(OTe) two weakly coordinating anions, the fluoride adduct [FAl-(OTe)] and the even less coordinating mixed anion [(FTeO)-Al-(OTe)], were synthesized. Among them, the synthetically useful silver salt Ag-[(FTeO)-Al-(OTe)] stands out, which could be used to generate a strong Brønsted acid by reaction with HCl as well as the [PhC] cation via reaction with PhCCl. Electrostatic potential surface analysis confirmed the more efficient delocalization of the negative charge and enhanced shielding of oxygen atoms in [(FTeO)-Al-(OTe)] compared to [FAl-(OTe)] and [Al-(OTeF)], and therefore its potential as a promising new WCA.
路易斯酸及其相关的弱配位阴离子(WCA)是化学中的核心物种,针对不同目的调节它们的性质仍然是一个具有挑战性的研究领域。在这项工作中,利用OTeF(CF)配体(OTe)的优势研究了路易斯酸Al-(OTe)的性质。通过氟离子亲和力(FIA)计算评估了其路易斯酸度,表明它是一种路易斯超强酸。通过合成Al-(OTe)·OPEt加合物,使用古特曼 - 贝克特方法进行的补充分析得出了类似的结果,然而对于较重的Ga物种,这种加合物的形成是不可能的,因为只得到了GaEt-(OTe)·OPEt。所报道的新路易斯酸进一步与四氢呋喃和碳酸二甲酯形成酸碱加合物而得以稳定。如量子化学计算所示,由于氟从其自身配体中被夺取,分离游离的路易斯酸被证明具有挑战性。从路易斯超强酸Al-(OTe)衍生出两种弱配位阴离子,即氟加合物[FAl-(OTe)]和配位性更弱的混合阴离子[(FTeO)-Al-(OTe)]。其中,合成上有用的银盐Ag-[(FTeO)-Al-(OTe)]脱颖而出,它可通过与HCl反应生成强布朗斯特酸,也可通过与PhCCl反应生成[PhC]阳离子。静电势表面分析证实,与[FAl-(OTe)]和[Al-(OTeF)]相比,[(FTeO)-Al-(OTe)]中负电荷的离域更有效,氧原子的屏蔽增强,因此它作为一种有前景新WCA的潜力。