Intermolecular network analysis of the liquid and vapor interfaces of pentane and water: microsolvation does not trend with interfacial properties
文献情報
Yasaman Ghadar, Aurora E. Clark
Liquid:vapor and liquid:liquid interfaces exhibit complex organizational structure and dynamics at the molecular level. In the case of water and organic solvents, the hydrophobicity of the organic, its conformational flexibility, and compressibility, all influence interfacial properties. This work compares the interfacial tension, width, molecular conformations and orientations at the vapor and aqueous liquid interfaces of two solvents, n-pentane and neopentane, whose varying molecular shapes can lead to significantly different interfacial behavior. Particular emphasis has been dedicated toward understanding how the hydrogen bond network of water responds to the pentane relative to the vapor interface and the sensitivity of the network to the individual pentane isomer and system temperature. Interfacial microsolvation of the immiscible solvents has been examined using graph theoretical methods that quantify the structure and dynamics of microsolvated species (both H2O in C5H12 and C5H12 in H2O). At room temperature, interfacial water at the pentane phase boundary is found to have markedly different organization and dynamics than at the vapor interface (as indicated by the hydrogen bond distributions and hydrogen bond persistence in solution). While the mesoscale interfacial properties (e.g. interfacial tension) are sensitive to the specific pentane isomer, the distribution and persistence of microsolvated species at the interface is nearly identical for both systems, irrespective of temperature (between 273 K and 298 K). This has important implications for understanding how properties defined by the interfacial organization are related to the underlying solvation reactions that drive formation of the phase boundary.
おすすめジャーナル

Topics in Catalysis

Electroanalysis

Heteroatom Chemistry

Journal of Chemical Sciences

Critical Reviews in Solid State and Materials Sciences

Medicinal Chemistry Research

Chinese Journal of Chemistry

Journal of the Indian Institute of Science

Herald of the Russian Academy of Sciences

Biocatalysis and Biotransformation
関連文献
Water oxidation by manganese oxides formed from tetranuclear precursor complexes: the influence of phosphate on structure and activity
Denys Shevchenko, Magnus F. Anderlund, Stenbjörn Styring, Holger Dau, Ivelina Zaharieva, Anders Thapper
DOI: 10.1039/C3CP55125C
Selective adsorption of bismuth telluride nanoplatelets through electrostatic attraction
DOI: 10.1039/C4CP00690A
Computational investigation of structural and electronic properties of aqueous interfaces of GaN, ZnO, and a GaN/ZnO alloy
Neerav Kharche, Mark S. Hybertsen, James T. Muckerman
DOI: 10.1039/C4CP00486H
A quasi-classical trajectory study of the OH + SO reaction: the role of ro-vibrational energy
W. A. D. Pires, J. D. Garrido, M. A. C. Nascimento, M. Y. Ballester
DOI: 10.1039/C4CP01363H
Confined H2O molecules as local probes of pressure-induced amorphisation in faujasite
Frederico Alabarse, Claire Levelut, Aude Isambert, Philippe Hébert, Shinji Kohara, David Maurin, Jean-Louis Bantignies, Olivier Cambon, Gaëlle Creff, Pascale Roy, Jean-Blaise Brubach, Tahar Hammouda, Denis Andrault, Julien Haines
DOI: 10.1039/C4CP00186A
Effect of ozone exposure on the electrical characteristics of high-purity, large-diameter semiconducting carbon nanotubes
Jia Gao, Yueh-Lin Loo
DOI: 10.1039/C4CP00665H
Non-innocent side-chains with dipole moments in organic solar cells improve charge separation
Hilde D. de Gier, Ria Broer
DOI: 10.1039/C4CP01070A
Redox hydrogels with adjusted redox potential for improved efficiency in Z-scheme inspired biophotovoltaic cells
Volker Hartmann, Tim Kothe, Sascha Pöller, Eithar El-Mohsnawy, Marc M. Nowaczyk, Nicolas Plumeré, Wolfgang Schuhmann, Matthias Rögner
DOI: 10.1039/C4CP00380B
Enhanced thermoelectric efficiency in ferromagnetic silicene nanoribbons terminated with hydrogen atoms
K. Zberecki, R. Swirkowicz, M. Wierzbicki
DOI: 10.1039/C4CP01039F
Construction of 3D V2O5/hydrogenated-WO3 nanotrees on tungsten foil for high-performance pseudocapacitors
Fengmei Wang, Yuanchang Li, Zhongzhou Cheng, Kai Xu, Xueying Zhan, Zhenxing Wang, Jun He
DOI: 10.1039/C4CP01200C
こちらもおすすめ
4-アミノフェノール酸ナトリウム水和物とは何ですか?
4-アミノフェノール酸ナトリウム水和物は、CAS番号206557-08-6の化合物で、4-アミノフェノールとナトリウムが結合した塩と水和物です。この化合物は、白...
Methyl 3-methyl-N-{[(2-methyl-2-propanyl)oxy]carbonyl}-L-histidinateの代替品はありますか?
この化合物は特定の合成プロセスに使用される可能性がありますが、代替品として、他の类似的な化合物、例えばMethyl 3-methyl-N-{[(2-methyl...
4-Boc-2-哌嗪甲酸の市場動向や研究トレンドはどうですか?
4-Boc-2-哌嗪甲酸は、薬品開発や合成化学分野で広く使用されており、その需要は継続的に推移しています。特に、新薬開発における合成化学分野での需要が高まってい...
4,4'-二羟甲基联苯の物理化学的性質は何ですか?
4,4'-二羟甲基联苯のCAS番号は1667-12-5です。この化合物は白色の結晶粉末で、分子量は154.20です。水にわずかに溶けますが、アルコールや有機溶媒...
5-甲硫基戊腈はどの業界で使用されていますか?
5-甲硫基戊腈は医薬品産業で使用される可能性があります。また、ポリマー合成の触媒として、センサー製造の一部として、半導体製造のプロセス改善に使用される可能性があ...
CAS番号1311961-50-8の化合物はどのように合成されますか?
この化合物は、1-abieta-8,11,13-trien-19-イルと6'-メトキシシンコナナン-9-基を含有する窒素含有化合物から合成されます。一般的な合成...
6-ブロモベンジジミダゾール-2-カルビルデオキシドはどのように保存すればよいですか?
6-ブロモベンジジミダゾール-2-カルビルデオキシドは、避光・乾燥した容器(密閉容器)で-20℃~4℃の低温で保存してください。高温や直射日光、湿気は避けてくだ...
Boc-N-甲基氨甲环酸とは何ですか?
621-65-8のCAS番号を持つBoc-N-甲基氨甲环酸は、化学式C7H13NO5を有する化合物です。この化合物は白色の結晶性粉末で、吸湿性があります。
乙基三氟硼酸钾はどのように合成されますか?
乙基三氟硼酸钾は、トリフLUオール酸カリウムとエチルブロミドを反応させて合成されます。この反応は高い選択性と収率を持ち、触媒を用いることで効率的に進行します。
2-フロウロ-5-クロロ-4-アミノフェノールはどのように保存すればよいですか?
2-フロウロ-5-クロロ-4-アミノフェノールは、直射日光を避けて冷却された暗所で保存し、密閉容器に保管してください。温度は常温か低温が適しています。
掲載誌
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.




