Tay Hui Min, Docker Andrew, Hua Carol, Beer Paul D
Chemistry Research Laboratory, Department of Chemistry, University of Oxford Mansfield Road Oxford OX1 3TA UK
Yusuf Hamied Department of Chemistry, University of Cambridge Lensfield Road Cambridge CB2 1EW UK.
Chem Sci. 2024 Jul 18;15(32):13074-13081. doi: 10.1039/d4sc03381g. eCollection 2024 Aug 14.
The synthesis and ion-pair binding properties of a heteroditopic [2]catenane receptor exhibiting highly potent and selective recognition of sodium halide salts are described. The receptor design consists of a bidentate halogen bonding donor motif for anion binding, as well as a di(ethylene glycol)-derived cation binding pocket which dramatically enhances metal cation affinity over previously reported homo[2]catenane analogues. H NMR cation, anion and ion-pair binding studies reveal significant positive cooperativity between the cation and anion binding events in which cation pre-complexation to the catenane subsequently 'switches-on' anion binding. Notably, the heteroditopic catenane displayed impressive selectivity for sodium halide recognition over the corresponding potassium halides. We further demonstrate that the catenane is capable of extracting solid alkali metal salts into organic media. Crucially, the observed solution phase binding selectivity for sodium halides translates to superior functional extraction capabilities of these salts relative to potassium halides, overcoming the comparatively higher lattice enthalpies NaX > KX dictated by the smaller alkali metal sodium cation. This is further exemplified in competitive solid-liquid experiments which revealed the exclusive extraction of sodium halide salts from solid mixtures of sodium and potassium halide salts.
本文描述了一种异二位点[2]连环烷受体的合成及其离子对结合特性,该受体对卤化钠盐具有高效且选择性的识别能力。受体设计包含用于阴离子结合的双齿卤素键供体基序,以及一个由二甘醇衍生的阳离子结合口袋,与先前报道的同[2]连环烷类似物相比,该口袋显著增强了金属阳离子亲和力。1H NMR阳离子、阴离子和离子对结合研究表明,阳离子和阴离子结合事件之间存在显著的正协同效应,其中阳离子与连环烷的预络合随后“开启”阴离子结合。值得注意的是,异二位点连环烷对卤化钠的识别相对于相应的卤化钾表现出令人印象深刻的选择性。我们进一步证明,连环烷能够将固体碱金属盐萃取到有机介质中。至关重要的是,观察到的卤化钠在溶液相的结合选择性转化为这些盐相对于卤化钾的卓越功能萃取能力,克服了由较小的碱金属钠离子决定的相对较高的晶格焓NaX > KX。这在竞争性固液实验中得到进一步例证,该实验揭示了从卤化钠和卤化钾的固体混合物中独家萃取卤化钠盐。