Cation recognition controlled by protonation or chemical reduction: a computational study

化学 二茂铁 质子化 羧酸 脱质子化 阳离子聚合 氢键 电子受体 分子 接受者 共价键 无机化学 光化学 有机化学 电化学 离子 物理化学 物理 电极 凝聚态物理
作者
Renato P. Orenha,Alexandre Luiz Souto Borges,Ana Lívia de Oliveira Andrade,Sergio Eduardo Ferreira,Saulo Samuel Pereira Furtado,Vinícius A. Glitz,Giovanni F. Caramori,Renato L. T. Parreira
出处
期刊:Physical Chemistry Chemical Physics [Royal Society of Chemistry]
卷期号:25 (22): 15518-15530 被引量:2
标识
DOI:10.1039/d3cp01175e
摘要

To control biochemical processes, non-covalent interactions involving cations are activated by protons or electrons. In the present study, the bonding situation between: (i) carboxylic acid or (ii) ferrocene-functionalized crown ether derivatives and cations (Li+, Na+ or K+) has been elucidated and, mainly, tuned by the substitution of hydrogen atoms by electron donor (-NH2) or acceptor (-NO2) groups. The deprotonation of the carboxyl groups improves the interaction with the cations through more favorable electrostatic O⋯cation interactions. Reducing the ferrocene structures favors cationic recognition supported by a less unfavorable iron⋯cation binding. The receptors preferably interact with smaller cations because of more attractive electrostatic and orbital (σ or π) O⋯cation interactions. The presence of electron donor or acceptor groups in the carboxylic acid-functionalized crown ethers promotes less attractive interactions with the cations, mainly due to the less favorable electrostatic O⋯Na+ interactions. The -H → -NH2 substitution in the ferrocene framework favors the cationic recognition. It is based on the strengthening of the electrostatic and σ O⋯Na+ and H2N⋯Na+ bonds. The (i) absence of repulsive electrostatic iron⋯cation interactions, or (ii) the presence of oxygen atoms with large electron density, ensures carboxylic acid-functionalized crown ethers have more favorable interactions with cations than ferrocene compounds. Therefore, this work has demonstrated how cation recognition can be improved by structural changes in carboxylic acid- or ferrocene-functionalized crown ethers and has shown that the carboxylic acid molecules appear to be better candidates for cation recognition than ferrocene derivatives.
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