Specific ion effects on membrane potential and the permselectivity of ion exchange membranes
文献信息
Harrison J. Cassady, Donald R. Paul
Membrane potential and permselectivity are critical parameters for a variety of electrochemically-driven separation and energy technologies. An electric potential is developed when a membrane separates electrolyte solutions of different concentrations, and a permselective membrane allows specific species to be transported while restricting the passage of other species. Ion exchange membranes are commonly used in applications that require advanced ionic electrolytes and span technologies such as alkaline batteries to ammonium bicarbonate reverse electrodialysis, but membranes are often only characterized in sodium chloride solutions. Our goal in this work was to better understand membrane behaviour in aqueous ammonium bicarbonate, which is of interest for closed-loop energy generation processes. Here we characterized the permselectivity of four commercial ion exchange membranes in aqueous solutions of sodium chloride, ammonium chloride, sodium bicarbonate, and ammonium bicarbonate. This stepwise approach, using four different ions in aqueous solution, was used to better understand how these specific ions affect ion transport in ion exchange membranes. Characterization of cation and anion exchange membrane permselectivity, using these ions, is discussed from the perspective of the difference in the physical chemistry of the hydrated ions, along with an accompanying re-derivation and examination of the basic equations that describe membrane potential. In general, permselectivity was highest in sodium chloride and lowest in ammonium bicarbonate solutions, and the nature of both the counter- and co-ions appeared to influence measured permselectivity. The counter-ion type influences the binding affinity between counter-ions and polymer fixed charge groups, and higher binding affinity between fixed charge sites and counter-ions within the membrane decreases the effective membrane charge density. As a result permselectivity decreases. The charge density and polarizability of the co-ions also appeared to influence permselectivity leading to ion-specific effects; co-ions that are charge dense and have low polarizability tended to result in high membrane permselectivity.
相关文献
Structural analysis of newly designed platinum compounds with interesting conductivity and optical properties
C. Finazzo, M. Fontana, S. Van Doorslaer, W. Caseri, A. Schweiger
DOI: 10.1039/B410696B
Dynamics of the insertion reaction C(1D) + H2: A comparison of crossed molecular beam experiments with quasiclassical trajectory and quantum mechanical scattering calculations
Nadia Balucani, Giovanni Capozza, Laura Cartechini, Astrid Bergeat, Rolf Bobbenkamp, Piergiorgio Casavecchia, F. Javier Aoiz, Luis Bañares, Pascal Honvault, Béatrice Bussery-Honvault, Jean-Michel Launay
DOI: 10.1039/B409327E
Semi-empirical molecular orbital methods including dispersion corrections for the accurate prediction of the full range of intermolecular interactions in biomolecules
Jonathan P. McNamara, Ian H. Hillier
DOI: 10.1039/B701890H
A fulleropyrrolidine end-capped platinum-acetylide triad: the mechanism of photoinduced charge transfer in organometallic photovoltaic cells
Fengqi Guo, Katsu Ogawa, Young-Gi Kim, Evgeny O. Danilov, Felix N. Castellano, John R. Reynolds, Kirk S. Schanze
DOI: 10.1039/B700379J
Bond and site selectivity in dissociative electron attachment to gas phase and condensed phase ethanol and trifluoroethanol
Mario Orzol, Isabel Martin, Jaroslav Kocisek, Iwona Dabkowska, Judith Langer, Eugen Illenberger
DOI: 10.1039/B701543G
On the role of interface polymers for the mechanics of natural polymeric composites
Peter Fratzl, Ingo Burgert, Himadri S. Gupta
DOI: 10.1039/B411986J
A molecular dynamics study of structural relaxation in tetrahedrally coordinated nanocrystals
Benjamin J. Morgan, Paul A. Madden
DOI: 10.1039/B701267E
Water dissociation at MgO sub-monolayers on silver: a periodic model study
DOI: 10.1039/B700526A
Orienting and aligning molecules for stereochemistry and photodynamics
Vincenzo Aquilanti, Massimiliano Bartolomei, Fernando Pirani, David Cappelletti, Franco Vecchiocattivi, Toshio Kasai
DOI: 10.1039/B415212C
您可能还喜欢
十二烷基磺酸钠(CAS号:2386-53-0)的主要用途是什么?
十二烷基磺酸钠主要用作表面活性剂,广泛应用于洗涤剂、肥皂、化妆品和工业清洁产品中。它能有效去除油脂和污垢,常用于制造洗发水、沐浴露、洗衣粉和金属清洗剂。此外,它...
5-羟基异喹啉(CAS号:2439-04-5)适用哪些法规指南?
5-羟基异喹啉作为化学品,主要适用的法规包括GHS全球化学品统一分类和标签制度,REACH法规等。GHS将5-羟基异喹啉分类为皮肤腐蚀/刺激类别2,严重眼损伤/...
在合成中是否有FIDAS-5 | Wnt(CAS号:1391934-98-7)的替代品?
合成中可以考虑使用类似结构的化合物,如4-[(E)-2-(2-氯-6-氟苯基)乙烯基]-N-甲基苯胺的类似物或衍生物作为替代品。这类化合物可能具有相似的生物活性...
(R)-tert-Butyl 2-(5-bromo-1H-imidazol-2-yl)pyrrolidine-1-carboxylate(CAS号:1370600-56-8)通常如何合成?
该化合物通常通过如下步骤合成:首先,将4-溴-1H-咪唑与对甲苯磺酸在乙酸乙酯中反应,得到中间体5-溴-1H-咪唑-2-甲酸乙酯。然后,该中间体与2-甲基-2-...
处理4-(吡咯烷-1-基)环己酮(CAS号:10421-18-8)时应注意哪些实验室安全事项?
处理4-(吡咯烷-1-基)环己酮时,应佩戴手套、护目镜和实验室外套,以防止直接接触或吸入。在通风橱中操作,确保良好的通风条件。一旦发生泄漏,应立即清理并使用适当...
如何处理含有异麦芽糖醇(CAS号:534-73-6)的废料?
含有异麦芽糖醇的废液应首先进行分类收集,避免与其他化学品混合。对于小规模的废液,可以通过焚烧或加入特定的化学试剂进行无害化处理。对于大规模的废液,建议联系专业的...
7-甲基壬酸(CAS号:41653-89-8)的主要用途是什么?
7-甲基壬酸主要用于有机合成领域,作为合成其他化合物的原料。此外,它还可能作为一种中间体用于药品制造和香料合成,但具体用途需要根据其具体的化学结构和反应特性来确...
N-甲氧基-N-甲基甲基吡啶羧酰胺(CAS号:148493-07-6)应用于哪些行业?
N-甲氧基-N-甲基甲基吡啶羧酰胺在医药领域有一定的应用,作为一种潜在的药物前体或中间体。此外,该化合物也可能应用于聚合物改性剂、传感器材料等。由于其独特的化学...
什么是惕各酸香叶酯(CAS号:7785-33-3)?
惕各酸香叶酯是一种化合物,化学名称为(2E)-3,7-二甲基-2,6-辛二烯-1-基(2E)-2-甲基-2-丁烯酸酯。它是一种具有香叶香气的化合物,分子式为C1...
1-环丁基哌嗪(CAS号:132800-13-6)安全吗?
1-环丁基哌嗪在适当的操作条件下是相对安全的,但如遇明火或高热会释放有毒气体。操作时应佩戴防护眼镜和手套,避免吸入或接触皮肤、眼睛。
来源期刊
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.










![(3aR,7R,7aR)-2,2-Diethyl-3a,6,7,7a-tetrahydro-7-[(methylsulfonyl)oxy]-1,3-benzodioxole-5-carboxylic Acid Ethyl Ester structure (3aR,7R,7aR)-2,2-Diethyl-3a,6,7,7a-tetrahydro-7-[(methylsulfonyl)oxy]-1,3-benzodioxole-5-carboxylic Acid Ethyl Ester structure](https://cnstatic.chemtradehub.com/structs/204/204254-90-0-7172.webp)
![Methyl 5-iodo-3-({[(2-methyl-2-propanyl)oxy]carbonyl}amino)-2-thiophenecarboxylate structure Methyl 5-iodo-3-({[(2-methyl-2-propanyl)oxy]carbonyl}amino)-2-thiophenecarboxylate structure](https://cnstatic.chemtradehub.com/structs/100/1007171-35-8-177e.webp)

![6-Nitro-2-(4-nitrophenyl)imidazo[1,2-a]pyridine structure 6-Nitro-2-(4-nitrophenyl)imidazo[1,2-a]pyridine structure](https://cnstatic.chemtradehub.com/structs/118/118000-57-0-cb82.webp)
