Mobility of Condensed Counterions in Ion-Exchange Membranes: Application of Screening Length Scaling Relationship in Highly Charged Environments

被引:4
作者
Huang, Yuxuan [1 ]
Fan, Hanqing [1 ]
Yip, Ngai Yin [1 ,2 ]
机构
[1] Columbia Univ, Dept Earth & Environm Engn, New York, NY 10027 USA
[2] Columbia Univ, Columbia Water Ctr, New York, NY 10027 USA
基金
美国国家科学基金会;
关键词
ion-exchange membranes; counterion condensation; counterion mobility; conductivity; screeninglength; POLYELECTROLYTE SOLUTIONS; REVERSE ELECTRODIALYSIS; RESIN MEMBRANE; LIMITING LAWS; DIFFUSION; PERMSELECTIVITY; ELECTROLYTES; TRANSPORT; CONDUCTIVITY; COEFFICIENTS;
D O I
10.1021/acs.est.3c06068
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Ion-exchange membranes (IEMs) are widely used in water, energy, and environmental applications, but transport models to accurately simulate ion permeation are currently lacking. This study presents a theoretical framework to predict ionic conductivity of IEMs by introducing an analytical model for condensed counterion mobility to the Donnan-Manning model. Modeling of condensed counterion mobility is enabled by the novel utilization of a scaling relationship to describe screening lengths in the densely charged IEM matrices, which overcame the obstacle of traditional electrolyte chemistry theories breaking down at very high ionic strength environments. Ionic conductivities of commercial IEMs were experimentally characterized in different electrolyte solutions containing a range of mono-, di-, and trivalent counterions. Because the current Donnan-Manning model neglects the mobility of condensed counterions, it is inadequate for modeling ion transport and significantly underestimated membrane conductivities (by up to approximate to;5x difference between observed and modeled values). Using the new model to account for condensed counterion mobilities substantially improved the accuracy of predicting IEM conductivities in monovalent counterions (to as small as within 7% of experimental values), without any adjustable parameters. Further adjusting the power law exponent of the screen length scaling relationship yielded reasonable precision for membrane conductivities in multivalent counterions. Analysis reveals that counterions are significantly more mobile in the condensed phase than in the uncondensed phase because electrostatic interactions accelerate condensed counterions but retard uncondensed counterions. Condensed counterions still have lower mobilities than ions in bulk solutions due to impedance from spatial effects. The transport framework presented here can model ion migration a priori with adequate accuracy. The findings provide insights into the underlying phenomena governing ion transport in IEMs to facilitate the rational development of more selective membranes.
引用
收藏
页码:836 / 846
页数:11
相关论文
共 61 条
[1]  
[Anonymous], 2001, Electrochemical Methods: Fundamentals and Applications, V2 Bard, A. J. F
[2]   Dielectric spectroscopy and conductivity of polyelectrolyte solutions [J].
Bordi, F ;
Cametti, C ;
Colby, RH .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2004, 16 (49) :R1423-R1463
[3]   Specific ion effects on the permselectivity of sulfonated poly (ether sulfone) cation exchange membranes [J].
Cassady, Harrison J. ;
Cimino, Emily C. ;
Kumar, Manish ;
Hickner, Michael A. .
JOURNAL OF MEMBRANE SCIENCE, 2016, 508 :146-152
[4]   Single and binary ion sorption equilibria of monovalent and divalent ions in commercial ion exchange membranes [J].
Chen, G. Q. ;
Wei, K. ;
Hassanvand, A. ;
Freeman, B. D. ;
Kentish, S. E. .
WATER RESEARCH, 2020, 175
[5]   Current status of ion exchange membranes for power generation from salinity gradients [J].
Dlugolecki, Piotr ;
Nymeijer, Kitty ;
Metz, Sybrand ;
Wessling, Matthias .
JOURNAL OF MEMBRANE SCIENCE, 2008, 319 (1-2) :214-222
[6]   On the resistances of membrane, diffusion boundary layer and double layer in ion exchange membrane transport [J].
Dlugolecki, Piotr ;
Ogonowski, Piotr ;
Metz, Sybrand J. ;
Saakes, Michel ;
Nijmeijer, Kitty ;
Wessling, Matthias .
JOURNAL OF MEMBRANE SCIENCE, 2010, 349 (1-2) :369-379
[7]   Transport limitations in ion exchange membranes at low salt concentrations [J].
Dlugolecki, Piotr ;
Anet, Benoit ;
Metz, Sybrand J. ;
Nijmeijer, Kitty ;
Wessling, Matthias .
JOURNAL OF MEMBRANE SCIENCE, 2010, 346 (01) :163-171
[8]   Towards single-species selectivity of membranes with subnanometre pores [J].
Epsztein, Razi ;
DuChanois, Ryan M. ;
Ritt, Cody L. ;
Noy, Aleksandr ;
Elimelech, Menachem .
NATURE NANOTECHNOLOGY, 2020, 15 (06) :426-436
[9]   Advancing ion-exchange membranes to ion-selective membranes: principles, status, and opportunities [J].
Fan, Hanqing ;
Huang, Yuxuan ;
Yip, Ngai Yin .
FRONTIERS OF ENVIRONMENTAL SCIENCE & ENGINEERING, 2023, 17 (02)
[10]   Counterion Mobility in Ion-Exchange Membranes: Spatial Effect and Valency-Dependent Electrostatic Interaction [J].
Fan, Hanqing ;
Huang, Yuxuan ;
Billinge, Ian H. ;
Bannon, Sean M. ;
Geise, Geoffrey M. ;
Yip, Ngai Yin .
ACS ES&T ENGINEERING, 2022, :1274-1286