离子液体中带电界面处氢键的弱化成因

IF 3.5 3区 工程技术 Q2 ENGINEERING, CHEMICAL
AIChE Journal Pub Date : 2024-12-06 DOI:10.1002/aic.18660
Junfeng Lu, Tinglan Sun, Yumiao Lu, Hongyan He, Yanlei Wang
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引用次数: 0

摘要

氢键(HBs)广泛存在于从生物学到电化学的各种应用中,在这些应用中,电化学界面上的氢键的量化提出了重大挑战。在此,我们提出了一种通过向电极界面注入电子来定量解耦离子液体中HBs的静电和范德华相互作用的方法。充电过程表明,获得电子的顺序为:二硫化钼;石墨烯;IL;氮化硼。有趣的是,优先带电的阳离子会导致HBs中库仑相互作用的直接减少;相反,带电底物会排斥阴离子并间接削弱HBs。红外光谱和共价变化分析验证了电荷诱导的直接和间接解耦过程。此外,能量分析表明,静电项约占HBs的50%。这些关于HBs弱源的研究结果可以指导分子设计的高效电化学应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Weakening origin of hydrogen bond in ionic liquid at the electrified interface

Hydrogen bonds (HBs) widely exist in applications ranging from biology to electrochemistry, where quantifying HB at the electrochemical interface poses significant challenges. Herein, we propose an approach to quantitatively decouple the electrostatic and van der Waals interactions of HBs in ionic liquids (ILs) by injecting electrons into the electrode interface. The charging process showed that the order of obtaining electrons is molybdenum disulfide > graphene > IL > boron nitride. Interestingly, the preferentially charged cations would lead to a direct reduction of coulombic interactions in HBs; in contrast, the charged substrate would repel the anion and weaken HBs indirectly. Infrared (IR) spectrum and covalent change analysis verified the charging-induced direct and indirect decoupling processes. Moreover, the energy analysis indicates that the electrostatic terms account for ~50% of HBs. These results on the weakening origin of HBs can guide the molecular design of ILs toward high-performance electrochemical applications.

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来源期刊
AIChE Journal
AIChE Journal 工程技术-工程:化工
CiteScore
7.10
自引率
10.80%
发文量
411
审稿时长
3.6 months
期刊介绍: The AIChE Journal is the premier research monthly in chemical engineering and related fields. This peer-reviewed and broad-based journal reports on the most important and latest technological advances in core areas of chemical engineering as well as in other relevant engineering disciplines. To keep abreast with the progressive outlook of the profession, the Journal has been expanding the scope of its editorial contents to include such fast developing areas as biotechnology, electrochemical engineering, and environmental engineering. The AIChE Journal is indeed the global communications vehicle for the world-renowned researchers to exchange top-notch research findings with one another. Subscribing to the AIChE Journal is like having immediate access to nine topical journals in the field. Articles are categorized according to the following topical areas: Biomolecular Engineering, Bioengineering, Biochemicals, Biofuels, and Food Inorganic Materials: Synthesis and Processing Particle Technology and Fluidization Process Systems Engineering Reaction Engineering, Kinetics and Catalysis Separations: Materials, Devices and Processes Soft Materials: Synthesis, Processing and Products Thermodynamics and Molecular-Scale Phenomena Transport Phenomena and Fluid Mechanics.
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