纳米约束下离子液体的理论与模拟

IF 55.8 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Svyatoslav Kondrat*, Guang Feng*, Fernando Bresme*, Michael Urbakh* and Alexei A. Kornyshev*, 
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引用次数: 7

摘要

室温离子液体(RTILs)具有非挥发性、大电化学窗口和显著的多样性等令人兴奋的特性,在储能、门控、电催化、可调润滑和其他应用方面引起了人们的兴趣。受限RTILs出现在各种情况下,例如,在超级电容器和电池的纳米结构电极的孔隙中,因为这些电极增加了与RTILs的接触面积,提高了总电容和存储能量,在表面力平衡实验中的交叉圆柱体之间,在原子力显微镜中的尖端和样品之间,以及在摩擦学实验中的滑动表面之间,RTILs充当润滑剂。在约束条件下,特别是在纳米约束条件下,RTILs的性质和功能导致了令人着迷的结构和动力学现象,包括层状、过筛和拥挤、纳米尺度毛细冻结、量子化和电可调摩擦以及超离子态。这篇综述全面分析了控制这些系统特性的基本物理现象,以及为描述这些系统而开发的当前最先进的理论和模拟方法。我们通过增加原子复杂性来依次讨论这些方法,特别关注纳米尺度约束中出现的新物理现象。这篇综述涵盖了理论模型,其中大多数是基于将问题映射到相关的统计力学模型上,并给出精确的解析解,从而更容易进行系统的分析和新的物理见解。我们还描述了一个经典的密度泛函理论,它提供了一个可靠的和计算成本低廉的工具来解释一些微观细节和简化模型通常无法考虑的相关性。分子模拟在研究受限离子液体中起着至关重要的作用,使研究人员能够深入了解微观情况。我们描述了各种模拟方法的基础,并讨论了它们的挑战和对特定问题的适用性,重点讨论了圆柱形和狭缝约束下的RTIL结构,以及它与约束离子的摩擦、电容性和动态特性的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Theory and Simulations of Ionic Liquids in Nanoconfinement

Theory and Simulations of Ionic Liquids in Nanoconfinement

Room-temperature ionic liquids (RTILs) have exciting properties such as nonvolatility, large electrochemical windows, and remarkable variety, drawing much interest in energy storage, gating, electrocatalysis, tunable lubrication, and other applications. Confined RTILs appear in various situations, for instance, in pores of nanostructured electrodes of supercapacitors and batteries, as such electrodes increase the contact area with RTILs and enhance the total capacitance and stored energy, between crossed cylinders in surface force balance experiments, between a tip and a sample in atomic force microscopy, and between sliding surfaces in tribology experiments, where RTILs act as lubricants. The properties and functioning of RTILs in confinement, especially nanoconfinement, result in fascinating structural and dynamic phenomena, including layering, overscreening and crowding, nanoscale capillary freezing, quantized and electrotunable friction, and superionic state. This review offers a comprehensive analysis of the fundamental physical phenomena controlling the properties of such systems and the current state-of-the-art theoretical and simulation approaches developed for their description. We discuss these approaches sequentially by increasing atomistic complexity, paying particular attention to new physical phenomena emerging in nanoscale confinement. This review covers theoretical models, most of which are based on mapping the problems on pertinent statistical mechanics models with exact analytical solutions, allowing systematic analysis and new physical insights to develop more easily. We also describe a classical density functional theory, which offers a reliable and computationally inexpensive tool to account for some microscopic details and correlations that simplified models often fail to consider. Molecular simulations play a vital role in studying confined ionic liquids, enabling deep microscopic insights otherwise unavailable to researchers. We describe the basics of various simulation approaches and discuss their challenges and applicability to specific problems, focusing on RTIL structure in cylindrical and slit confinement and how it relates to friction and capacitive and dynamic properties of confined ions.

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来源期刊
Chemical Reviews
Chemical Reviews 化学-化学综合
CiteScore
106.00
自引率
1.10%
发文量
278
审稿时长
4.3 months
期刊介绍: Chemical Reviews is a highly regarded and highest-ranked journal covering the general topic of chemistry. Its mission is to provide comprehensive, authoritative, critical, and readable reviews of important recent research in organic, inorganic, physical, analytical, theoretical, and biological chemistry. Since 1985, Chemical Reviews has also published periodic thematic issues that focus on a single theme or direction of emerging research.
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