铵
反离子
选择性
等结构
化学
超分子化学
分子识别
水溶液
组合化学
无机化学
离子
分子
结晶学
有机化学
晶体结构
催化作用
作者
Callum S. Begg,Mark P. Walsh,Joseph M. Phelps,Emma H. Wolpert,Emanuella F. Fiandra,Emma Winful,Abby R. Haworth,Dmitry S. Yufit,Karen E. Johnston,Clare S. Mahon,Kim E. Jelfs,Matthew O. Kitching
标识
DOI:10.26434/chemrxiv-2023-0bbgm
摘要
Selective recognition of ammonium cations fundamentally relies on their degree of substitution. In biological systems, proteins can preferentially bind more substituted ammonium cations over less substituted homologues. To date, a general methodology to mimic this behavior remains elusive as synthetic hosts principally observe the inverse order (i.e., 1°>2°>3°>4°). Here we show that, through combining supramolecular recognition with solid-phase abstraction, we can overturn the canonical order of synthetic receptor selectivity across a diverse range of ammonium cation scaffolds. Quaternary ammonium cations access a lower energy solid-state than tertiary counterparts through multipoint binding to an adaptive array of isostructural BINOL·counterion networks. The preferential abstraction of quaternary ammonium cations from mixtures of homologous cations proceeds under thermodynamic control with excellent selectivity and remains operative even under aqueous conditions.
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