CNR-IPCF, Viale F. Stagno d'Alcontres 37, 98158 Messina, Italy.
Dipartimento di Matematica "G. Peano", Università degli Studi di Torino, Via Carlo Alberto 10, 10123 Torino, Italy.
Molecules. 2020 Jul 24;25(15):3371. doi: 10.3390/molecules25153371.
Intense electric fields applied on H-bonded systems are able to induce molecular dissociations, proton transfers, and complex chemical reactions. Nevertheless, the effects induced in heterogeneous molecular systems such as methanol-water mixtures are still elusive. Here we report on a series of state-of-the-art molecular dynamics simulations of liquid methanol-water mixtures at different molar ratios exposed to static electric fields. If, on the one hand, the presence of water increases the proton conductivity of methanol-water mixtures, on the other, it hinders the typical enhancement of the chemical reactivity induced by electric fields. In particular, a sudden increase of the protonic conductivity is recorded when the amount of water exceeds that of methanol in the mixtures, suggesting that important structural changes of the H-bond network occur. By contrast, the field-induced multifaceted chemistry leading to the synthesis of e.g., hydrogen, dimethyl ether, formaldehyde, and methane observed in neat methanol, in 75:25, and equimolar methanol-water mixtures, completely disappears in samples containing an excess of water and in pure water. The presence of water strongly inhibits the chemical reactivity of methanol.
强电场作用于氢键体系能够诱导分子离解、质子转移和复杂化学反应。然而,在甲醇-水等非均相混合体系中所诱导的效应仍难以捉摸。在此,我们报告了一系列最先进的分子动力学模拟,模拟了在不同摩尔比下的液态甲醇-水混合物在静态电场中的情况。一方面,如果水的存在增加了甲醇-水混合物的质子电导率,另一方面,它阻碍了电场诱导的典型化学反应活性的增强。特别是,当混合物中水中的含量超过甲醇时,记录到质子电导率的突然增加,这表明氢键网络发生了重要的结构变化。相比之下,在纯甲醇、75:25 和等摩尔甲醇-水混合物中观察到的电场诱导的多方面化学合成,例如氢气、二甲醚、甲醛和甲烷,在含有过量水和纯水的样品中完全消失。水的存在强烈抑制了甲醇的化学反应活性。