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首页> 外文期刊>Fluid Phase Equilibria >Swelling equilibrium of hydrogels of (N-isopropyl acrylamide+anionic and cationic comonomers) in aqueous solutions of sodium chloride: Experimental results and modeling
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Swelling equilibrium of hydrogels of (N-isopropyl acrylamide+anionic and cationic comonomers) in aqueous solutions of sodium chloride: Experimental results and modeling

机译:(N-异丙基丙烯酰胺+阴离子和阳离子共聚单体)水凝胶在氯化钠水溶液中的溶胀平衡:实验结果和模型

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Experimental results are reported for the swelling equilibrium of some ionic hydrogels consisting of N-isopropyl acrylamide (N-IPAAm) and one or two comonomers - the anionic monomer 2-acrylamido-2-methyl-1-propane sulfonic acid (AMPS) and/or the cationic monomer 3-(methacrylamido)propyl trimethylammoniumchloride (MAPTAC) - in water and in aqueous solutions of sodium chloride at 298K. The degree of swelling of such ionic hydrogels increases with the net charge (i.e., the difference in the mole fractions of anionic and cationic comonomers) as well as with the charge density (i.e. the mole fraction of a single comonomer). The mole fraction of a single comonomer was varied between 0 and 0.05. The (absolute) difference between the mole fractions of the anionic and cationic comonomers was varied between 0 and 0.03. Two characteristic transitions in the degree of swelling of the hydrogels were observed when sodium chloride is added to the coexisting liquid phase. The first transition depicts the conversion of the ionic comonomer into the neutral state. In that transition the degree of swelling of a charged ionic hydrogel reduces to the degree of swelling of a nonionic hydrogel. For the investigated hydrogels, that transition occurs when the mass fraction of NaCl in the coexisting aqueous phase is increased beyond approximately 5×10~(-5). The second transition occurs at much higher sodium chloride mass fractions (around 5×10~(-3)). In that transition the hydrogel collapses, i.e., that transition resembles the phase transition observed when non-ionic N-IPAAm hydrogels are dissolved in aqueous solutions of sodium chloride.The experimental results for the degree of swelling are quantitatively described by a thermodynamic framework that combines an expression for the Gibbs energy of a liquid phase (a chemical reactive, aqueous electrolyte solution of the non-crosslinked polymer chains) with an expression for the Helmholtz energy of an elastic network (that accounts for the crosslinking effects).
机译:报道了一些由N-异丙基丙烯酰胺(N-IPAAm)和一种或两种共聚单体-阴离子单体2-丙烯酰胺基-2-甲基-1-丙烷磺酸(AMPS)和/组成的离子水凝胶的溶胀平衡的实验结果。或阳离子单体3-(甲基丙烯酰胺基)丙基三甲基氯化铵(MAPTAC)–在水中和在298K的氯化钠水溶液中。这类离子水凝胶的溶胀度随净电荷(即阴离子和阳离子共聚单体的摩尔分数之差)以及电荷密度(即单一共聚单体的摩尔分数)而增加。单个共聚单体的摩尔分数在0至0.05之间变化。阴离子和阳离子共聚单体的摩尔分数之间的(绝对)差在0至0.03之间变化。当将氯化钠加入到共存液相中时,观察到水凝胶溶胀度的两个特征性转变。第一转变描述了离子共聚单体向中性状态的转化。在该转变中,带电离子水凝胶的溶胀度降低至非离子水凝胶的溶胀度。对于所研究的水凝胶,当共存水相中NaCl的质量分数增加到大约5×10〜(-5)以上时,就会发生这种转变。第二个转变发生在更高的氯化钠质量分数(约5×10〜(-3))处。在该转变中,水凝胶塌陷,即,该转变类似于将非离子型N-IPAAm水凝胶溶解在氯化钠水溶液中时观察到的相变。溶胀度的实验结果通过热力学框架定量描述液相(未交联的聚合物链的化学反应性电解质水溶液)的吉布斯能量的表达式,以及弹性网络的亥姆霍兹能量的表达式(说明了交联效应)。

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