Pore assembled multilayers of charged polypeptides in microporous membranes for ion separation

被引:61
作者
Hollman, AM [1 ]
Bhattacharyya, D [1 ]
机构
[1] Univ Kentucky, Dept Chem & Mat Engn, Lexington, KY 40506 USA
关键词
D O I
10.1021/la049688+
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this study, highly permeable ion-selective membranes are prepared via immobilization of polyelectrolyte multilayer networks within the inner pore structure of a microporous (pore size = 0.2 mum) support. Electrostatic layer-by-layer assembly is achieved through alternate adsorption of cationic and anionic polyelectrolytes under convective flow conditions. To initiate pore assembly, the first layer consists of covalently bound charged polypeptides (poly(L-glutamic acid) (PLGA) or poly(L-lysine) (PLL)) establishing a charged support for subsequent adsorption. Nonstoichiometric immobilization of charged multilayers within a confined pore geometry leads to an enhanced volume density of ionizable groups in the membrane phase. This overall increase in the effective charge density allows for Donnan exclusion of ionic species (especially divalent co-ions) using microporous materials characterized by permeability values that exceed conventional membrane processes. Multilayer assemblies are fabricated using both PLGA/PLL and synthetic polyelectrolytes (poly(styrenesulfonate)/poly(allylamine)) in an attempt to compare the level of adsorption and separation properties of the resulting materials. The role of salt concentration in the carrier solvent on overall polyelectrolyte adsorption was examined to determine its effect on both solute (Cl-, SO42-, As(V)) and water transport. Constriction of the pore size induced by multilayer propagation was monitored through permeability measurements and dextran rejection studies at each stage of the deposition process.
引用
收藏
页码:5418 / 5424
页数:7
相关论文
共 43 条
[1]   Density-dependent jump in compressibility of polyelectrolyte brush layers revealed by surface forces measurement [J].
Abe, T ;
Higashi, N ;
Niwa, M ;
Kurihara, K .
LANGMUIR, 1999, 15 (22) :7725-7731
[2]  
Bertrand P, 2000, MACROMOL RAPID COMM, V21, P319, DOI 10.1002/(SICI)1521-3927(20000401)21:7<319::AID-MARC319>3.0.CO
[3]  
2-7
[4]   Secondary structure of polypeptide multilayer films:: An example of locally ordered polyelectrolyte multilayers [J].
Boulmedais, F ;
Schwinté, P ;
Gergely, C ;
Voegel, JC ;
Schaaf, P .
LANGMUIR, 2002, 18 (11) :4523-4525
[5]   Enzyme encapsulation in layer-by-layer engineered polymer multilayer capsules [J].
Caruso, F ;
Trau, D ;
Möhwald, H ;
Renneberg, R .
LANGMUIR, 2000, 16 (04) :1485-1488
[6]   Controlling ion transport through multilayer polyelectrolyte membranes by derivatization with photolabile functional groups [J].
Dai, JH ;
Balachandra, AM ;
Lee, JI ;
Bruening, ML .
MACROMOLECULES, 2002, 35 (08) :3164-3170
[7]   Nucleation of iron oxy-hydroxide nanoparticles by layer-by-layer polyionic assemblies [J].
Dante, S ;
Hou, ZZ ;
Risbud, S ;
Stroeve, P .
LANGMUIR, 1999, 15 (06) :2176-2182
[8]  
Das S, 2002, LANGMUIR, V18, P458, DOI [10.1021/la011043b, 10.1021/1a011043b]
[9]  
DECHER G, 1992, PROG COLL POL SCI S, V89, P160
[10]   Fuzzy nanoassemblies: Toward layered polymeric multicomposites [J].
Decher, G .
SCIENCE, 1997, 277 (5330) :1232-1237