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质子匹配使酸 - 1 - 甲基咪唑二元混合物中的量子质子离域成为可能。

p Matching Enables Quantum Proton Delocalization in Acid-1-Methylimidazole Binary Mixtures.

作者信息

Zhang Rui, Ye Dylan, Gurung Anit, Warmuth Ralf, Kuroda Daniel G, Wang Lu

机构信息

Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, New Jersey 08854, United States.

Department of Chemistry, University of Illinois at Urbana─Champaign, Urbana, Illinois 61801, United States.

出版信息

J Chem Inf Model. 2025 Jan 27;65(2):798-810. doi: 10.1021/acs.jcim.4c02187. Epub 2025 Jan 7.

DOI:10.1021/acs.jcim.4c02187
PMID:39772573
Abstract

Short hydrogen bonds (SHBs), characterized by donor-acceptor heteroatom separations below 2.7 Å, are prevalent in condensed-phase systems. Recently, we identified SHBs in nonaqueous binary mixtures of acetic acid and 1-methylimidazole (MIm), where electronic and nuclear quantum effects facilitate extensive proton delocalization. In this work, we explore the conditions favoring SHB formation in binary acid-base mixtures and propose that the difference in p values between the acid and base, measured in a nonaqueous, aprotic solvent like DMSO, is a key determinant. Using MIm as a model base, we perform electronic structure calculations to systematically analyze p matching across 97 acid-MIm pairs in DMSO solutions. Through a combination of first-principles simulations and infrared spectroscopy, we confirm the formation of SHBs and the delocalization of protons in benzoic acid-MIm and salicylic acid-MIm binary mixtures. Our results demonstrate that p matching can significantly alter proton behavior in nonaqueous systems, transforming acid-base interactions from conventional proton transfer to quantum mechanical proton delocalization. This work establishes DMSO as a valuable alternative to water for assessing p matching and highlights the importance of hydrogen bond networks in modulating these conditions. By elucidating the impact of electronic and nuclear quantum effects, our results provides insights for designing organic mixtures that leverage SHBs for advanced material applications.

摘要

短氢键(SHBs)以供体-受体杂原子间距低于2.7 Å为特征,在凝聚相体系中普遍存在。最近,我们在乙酸与1-甲基咪唑(MIm)的非水二元混合物中发现了短氢键,其中电子和核量子效应促进了广泛的质子离域。在这项工作中,我们探索了二元酸碱混合物中有利于短氢键形成的条件,并提出在二甲基亚砜(DMSO)等非水、非质子溶剂中测得的酸和碱的p值差异是一个关键决定因素。以MIm作为模型碱,我们进行电子结构计算,以系统分析DMSO溶液中97种酸-MIm对的p匹配情况。通过结合第一性原理模拟和红外光谱,我们证实了苯甲酸-MIm和水杨酸-MIm二元混合物中短氢键的形成以及质子的离域。我们的结果表明,p匹配可以显著改变非水体系中的质子行为,将酸碱相互作用从传统的质子转移转变为量子力学质子离域。这项工作确立了DMSO作为评估p匹配的一种有价值的替代水的溶剂,并突出了氢键网络在调节这些条件方面的重要性。通过阐明电子和核量子效应的影响,我们的结果为设计利用短氢键用于先进材料应用的有机混合物提供了见解。

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