首页> 外文期刊>Colloids and Surfaces. A, Physicochemical and Engineering Aspects >Poly(ethylene oxide)-poly(propylene oxide)-poly(ethylene oxide) block copolymer surfactants in aqueous solutions and at interfaces: thermodynamics, structure, dynamics, and modeling
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Poly(ethylene oxide)-poly(propylene oxide)-poly(ethylene oxide) block copolymer surfactants in aqueous solutions and at interfaces: thermodynamics, structure, dynamics, and modeling

机译:水溶液中和界面处的聚环氧乙烷-聚环氧丙烷-聚环氧乙烷嵌段共聚物表面活性剂:热力学,结构,动力学和模型

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摘要

The association properties of poly (ethylene oxide)-block-poly(propylene oxide)-block-poly(ethylene oxide) (PEO-PPO-PEO) copolymers (commercially available as Poloxamers and Pluronics) in aqueous solutions, and the adsorption of these copolymers at interfaces are reviewed. At low temperatures and/or concentrations the PEO-PPO-PEO copolymers exist in solution as individual coils (unimers). Thermodynamically stable micelles are formed with increasing copolymer concentration and/or solution temperature, as revealed by surface tension, light scattering, and dye solubilization experiments. The unimer-to-micelle transition is not sharp, but spans a concentration decade or 10 K. The critical micellization concentration (CMC) and temperature (CMT) decrease with an increase in the copolymer PPO content or molecular weight. The dependence of CMC on temperature, together with differential scanning calorimetry experiments, indicates that the micellization process of PEO-PPO-PEO copolymers in water is endothermic and driven by a decrease in the polarity of ethylene oxide (EO) and propylene oxide (PO) segments as the temperature increases, and by the entropy gain in water when unimers aggregate to form micelles (hydrophobic effect). The free energy and enthalpy of micellization can be correlated to the total number of EO and PO segments in the copolymer and its molecular weight. The micelles have hydrodynamic radii of approximately 10 nm and aggregation numbers in the order of 50. The aggregation number is thought to be independent of the copolymer concentration and to increase with temperature. Phenomenological and mean-field lattice models for the formation of micelles can describe qualitatively the trends observed experimentally. In addition, the lattice models can provide information on the distribution of the EO and PO segments in the micelle. The PEO-PPO-PEO copolymers adsorb on both air-water and solid-water interfaces; the PPO block is located at the interface while the PEO block extends into the solution, when copolymers are adsorbed at hydrophobic interfaces. Gels are formed by certain PEO-PPO-PEO block copolymers at high concentrations, with the micelles remaining apparently intact in the form of a "crystal". The gelation onset temperature and the thermal stability range of the gel increase with increasing PEO block length. A comparison of PEO-PPO copolymers with PEO-PBO and PEO-PS block copolymers and C_iE_j surfactants is made, and selected applications of PEO-PPO-PEO block copolymer solutions (such as solubilization of organics, protection of microorganisms, and biomedical uses of micelles and gels) are presented.
机译:聚(环氧乙烷)-嵌段-聚(环氧丙烷)-嵌段-聚(环氧乙烷)(PEO-PPO-PEO)共聚物(PEO-PPO-PEO)共聚物在水溶液中的缔合特性及其吸附审查了界面处的共聚物。在低温和/或低浓度下,PEO-PPO-PEO共聚物以单独的线圈(单体)形式存在于溶液中。如表面张力,光散射和染料增溶实验所示,随着共聚物浓度和/或溶液温度的升高,形成热力学稳定的胶束。单体到胶束的转变并不尖锐,而是跨越十年或10 K的浓度。临界胶束化浓度(CMC)和温度(CMT)随着共聚物PPO含量或分子量的增加而降低。 CMC对温度的依赖性以及差示扫描量热法实验表明,PEO-PPO-PEO共聚物在水中的胶束化过程是吸热的,并且受环氧乙烷(EO)和环氧丙烷(PO)极性降低的驱动当单体升高形成胶束时(疏水作用),随着温度的升高,酶切成段,并在水中增加熵。胶束化的自由能和焓可以与共聚物中EO和PO链段的总数及其分子量相关。胶束的流体力学半径约为10 nm,聚集数约为50。聚集数被认为与共聚物浓度无关,并随温度增加而增加。胶束形成的现象学和平均场格模型可以定性描述实验观察到的趋势。此外,晶格模型可以提供有关胶束中EO和PO段的分布的信息。 PEO-PPO-PEO共聚物同时吸附在空气-水和固体-水界面上。当共聚物吸附在疏水性界面上时,PPO嵌段位于界面处,而PEO嵌段延伸至溶液中。凝胶是由某些高浓度的PEO-PPO-PEO嵌段共聚物形成的,其中胶束以“晶体”的形式保持完好无损。凝胶起始温度和凝胶的热稳定性范围随PEO嵌段长度的增加而增加。将PEO-PPO共聚物与PEO-PBO和PEO-PS嵌段共聚物以及C_iE_j表面活性剂进行了比较,并选择了PEO-PPO-PEO嵌段共聚物溶液的应用(例如有机物的增溶,微生物的保护以及胶束和凝胶)。

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