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本文引用的文献

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Surface induced smectic order in ionic liquids - an X-ray reflectivity study of [CCim][NTf].离子液体中表面诱导的近晶相序——[CCim][NTf]的X射线反射率研究
Phys Chem Chem Phys. 2017 Oct 11;19(39):26651-26661. doi: 10.1039/c7cp04852a.
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Molecular scale structure and dynamics at an ionic liquid/electrode interface.离子液体/电极界面处的分子尺度结构和动力学。
Faraday Discuss. 2017 Dec 14;206:141-157. doi: 10.1039/c7fd00171a.
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Multiscale Studies on Ionic Liquids.多尺度研究离子液体。
Chem Rev. 2017 May 24;117(10):6636-6695. doi: 10.1021/acs.chemrev.6b00776. Epub 2017 May 10.
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Mesoscopic Correlation Functions in Heterogeneous Ionic Liquids.介观相关函数在多相离子液体中的应用。
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Surface structure of imidazolium-based ionic liquids: Quantitative comparison between simulations and high-resolution RBS measurements.咪唑基离子液体的表面结构:模拟与高分辨率卢瑟福背散射测量的定量比较。
J Chem Phys. 2016 Mar 21;144(11):114702. doi: 10.1063/1.4943887.
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The effect of lithium salt doping on the nanostructure of ionic liquids.锂盐掺杂对离子液体纳米结构的影响。
Phys Chem Chem Phys. 2015 Oct 28;17(40):27082-7. doi: 10.1039/c5cp03825a.
7
Modern Room Temperature Ionic Liquids, a Simple Guide to Understanding Their Structure and How It May Relate to Dynamics.现代室温离子液体:理解其结构及其与动力学关系的简易指南
J Phys Chem B. 2015 Oct 8;119(40):12727-40. doi: 10.1021/acs.jpcb.5b05506. Epub 2015 Aug 10.
8
Long-range electrostatic screening in ionic liquids.离子液体中的长程静电屏蔽
Proc Natl Acad Sci U S A. 2015 Jun 16;112(24):7432-7. doi: 10.1073/pnas.1508366112. Epub 2015 May 26.
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Structure and nanostructure in ionic liquids.离子液体中的结构与纳米结构。
Chem Rev. 2015 Jul 8;115(13):6357-426. doi: 10.1021/cr500411q. Epub 2015 Jun 1.
10
Solid-liquid interfaces of ionic liquid solutions--Interfacial layering and bulk correlations.离子液体溶液的固液界面——界面分层与本体相关性
J Chem Phys. 2015 Apr 28;142(16):164707. doi: 10.1063/1.4918742.

表面结构在离子液体同系物中的演变。

Surface structure evolution in a homologous series of ionic liquids.

机构信息

Physics Department, Bar-Ilan University, Ramat Gan 5290002, Israel.

Institute of Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat Gan 5290002, Israel.

出版信息

Proc Natl Acad Sci U S A. 2018 Feb 6;115(6):E1100-E1107. doi: 10.1073/pnas.1716418115. Epub 2018 Jan 22.

DOI:10.1073/pnas.1716418115
PMID:29358372
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5819424/
Abstract

Interfaces of room temperature ionic liquids (RTILs) are important for both applications and basic science and are therefore intensely studied. However, the evolution of their interface structure with the cation's alkyl chain length [Formula: see text] from Coulomb to van der Waals interaction domination has not yet been studied for even a single broad homologous RTIL series. We present here such a study of the liquid-air interface for [Formula: see text], using angstrom-resolution X-ray methods. For [Formula: see text], a typical "simple liquid" monotonic surface-normal electron density profile [Formula: see text] is obtained, like those of water and organic solvents. For [Formula: see text], increasingly more pronounced nanoscale self-segregation of the molecules' charged moieties and apolar chains yields surface layering with alternating regions of headgroups and chains. The layering decays into the bulk over a few, to a few tens, of nanometers. The layering periods and decay lengths, their linear [Formula: see text] dependence, and slopes are discussed within two models, one with partial-chain interdigitation and the other with liquid-like chains. No surface-parallel long-range order is found within the surface layer. For [Formula: see text], a different surface phase is observed above melting. Our results also impact general liquid-phase issues like supramolecular self-aggregation and bulk-surface structure relations.

摘要

室温离子液体(RTILs)的界面对于应用和基础科学都非常重要,因此受到了广泛的研究。然而,从库仑相互作用到范德华相互作用主导的阳离子烷基链长度[Formula: see text]的界面结构演化,甚至对于单一的广泛同系 RTIL 系列,也尚未得到研究。在这里,我们使用埃分辨率的 X 射线方法,对[Formula: see text]的气-液界面进行了这样的研究。对于[Formula: see text],得到了一个典型的“简单液体”的表面法向电子密度单调分布[Formula: see text],类似于水和有机溶剂。对于[Formula: see text],分子的带电部分和非极性链越来越明显的纳米尺度自分离导致了表面分层,交替出现头基和链区。分层在几个到几十个纳米的范围内向体相衰减。我们在两个模型中讨论了分层周期和衰减长度及其线性[Formula: see text]依赖性和斜率,一个模型带有部分链互贯,另一个模型带有液态链。在表面层内没有发现表面平行的长程有序。对于[Formula: see text],在熔化以上观察到了不同的表面相。我们的结果还影响了一般的液相问题,如超分子自组装和体相-表面结构关系。