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Adiabatic compressibility of polyelectrolytes: The influence of solvents on ionic and nonionic polymers

机译:聚电解质的绝热压缩性:溶剂对离子和非离子聚合物的影响

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AbstractThe adiabatic compressibility of two ionic polymers; namely, poly(acrylic acid) (PAA) and poly(N‐dimethylaminoethyl methacrylate) (PDAM) in methanol and dioxane solutions and of a nonionic polymer, poly(vinyl pyrrolidone) (PVP) in aqueous, methanol, and dioxane solutions has been studied. The φV2and φK2values for the three polymers and their corresponding monomers in methanol and dioxane solutions are found to be concentration independent. There is a marked difference in φK02and φV02values between monomer and polymer in all three solvents. In aqueous solution, the difference in φV02is, on an average, 16.1 cm3/mol, while in methanol and dioxane solution, the same is 24.0 and 20.5 cm3/mol (average), respectively. All three monomers in dilute aqueous solution show a contraction of volume and decrease of adiabatic compressibility which are comparatively small in methanol and dioxane solutions. The φV02for PAA, PDAM, and PVP were found to have increased by 0.8, 11.0, and 1.5 cm3/mol, respectively, in dioxane solution over that of the value of the aqueous solution. It is interesting to note that in methanol solution, PAA, PDAM, and PVP show a decrease of φK02and φV02values by 68.8 cm3/bar/mol and 8.2 cm3/bar/mol, 32.7 cm3/bar/mol, and 4.3 cm3/mol, and 36.6 cm3/bar/mol and 5.8 cm3/mol, respectively, compared to the values obtained from aqueous solution. This has been ascribed to geometric effect since the void space around the molecules is smaller in methanol than
机译:摘要两种离子聚合物的绝热压缩性;即,在甲醇和二氧六环溶液中,聚(丙烯酸)(PAA)和聚(N-二甲氨基乙基甲基丙烯酸酯)(PDAM)以及非离子聚合物,聚(乙烯基吡咯烷酮)(PVP)在水溶液、甲醇和二氧六环溶液中的研究。发现三种聚合物及其相应单体在甲醇和二氧六环溶液中的φV2和φK2值与浓度无关。在这三种溶剂中,单体和聚合物的φK02和φV02值存在显著差异。在水溶液中,φV02 的差异平均为 16.1 cm3/mol,而在甲醇和二恶烷溶液中,平均为 24.0 和 20.5 cm3/mol(平均)。稀水溶液中的三种单体均表现出体积收缩和绝热压缩率降低,而绝热压缩率在甲醇和二氧六环溶液中相对较小。与水溶液相比,PAA、PDAM和PVP的φV02分别比水溶液中增加了0.8、11.0和1.5 cm3/mol。值得注意的是,在甲醇溶液中,PAA、PDAM和PVP的φK02和φV02值分别降低了68.8 cm3/bar/mol和8.2 cm3/bar/mol、32.7 cm3/bar/mol和4.3 cm3/mol,以及36.6 cm3/bar/mol和5.8 cm3/mol。这归因于几何效应,因为甲醇中分子周围的空隙空间小于

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