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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Chain Length Dependence of Non-Surface Activity and Micellization Behavior of Cationic Amphiphilic Diblock Copolymers
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Chain Length Dependence of Non-Surface Activity and Micellization Behavior of Cationic Amphiphilic Diblock Copolymers

机译:阳离子两亲性二嵌段共聚物的非表面活性及其胶束化行为的链长依赖性

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摘要

The cationic and anionic amphiphilic diblock copolymers with a critical chain length and block ratio do not adsorb at the air/water interface but form micelles in solution, which is a phenomenon called "non-surface activity". This is primarily due to the high charge density of the block copolymer, which creates a strong image charge effect at the air/water interface preventing adsorption. Very stable micelle formation in bulk solution could also play an important role in the non-surface activity. To further confirm these unique properties, we studied the adsorption and micellization behavior of cationic amphiphilic diblock copolymers of poly(n-butyl acrylate)-b-poly(3-(methacryloyloxy)ethyl)trimethylammonium chloride) (PBA-b-PDMC) with different molecular weights of hydrophobic blocks but with the same ionic block length. These block copolymers were successfully prepared via consecutive reversible addition-fragmentation chain transfer (RAFT) polymerization. The block copolymer with the shortest hydrophobic block length was surface-active; the solution showed surface tension reduction and foam formation. However, above the critical block ratio, the surface tension of the solution did not decrease with increasing polymer concentration, and there was no foam formation, indicating lack of surface activity. After addition of 0.1 M NaCl, stable foam formation and slight reduction of surface tension were observed, which is reminiscent of the electrostatic nature of the non-surface activity. Fluorescence and dynamic and static light scattering measurements showed that the copolymer with the shortest hydrophobic block did not form micelles, while the block copolymers formed spherical micelles having radii of 25-30 nm. These observations indicate that micelle formation is also important for non-surface activity. Upon addition of NaCl, cmc did not decrease but rather increased as observed for nonsurface- active block copolymers previously studied. The micelles formed were very stable, and their size decreased by only ~5 nm after addition of 0.1 M NaCl.
机译:具有临界链长和嵌段比的阳离子和阴离子两亲性二嵌段共聚物不吸附在空气/水界面上,而是在溶液中形成胶束,这种现象称为“非表面活性”。这主要是由于嵌段共聚物的高电荷密度,其在空气/水界面处产生了很强的图像电荷效应,从而阻止了吸附。在本体溶液中非常稳定的胶束形成也可能在非表面活性中起重要作用。为了进一步证实这些独特的性能,我们研究了聚(丙烯酸正丁酯)-b-聚(3-(甲基丙烯酰氧基氧基)乙基)三甲基氯化铵(PBA-b-PDMC)与阳离子两亲性二嵌段共聚物的吸附和胶束化行为。疏水嵌段的分子量不同,但离子嵌段长度相同。这些嵌段共聚物是通过连续的可逆加成-断裂链转移(RAFT)聚合成功制备的。疏水嵌段长度最短的嵌段共聚物是表面活性的。该溶液显示出表面张力降低和泡沫形成。但是,在临界嵌段比之上,溶液的表面张力不会随着聚合物浓度的增加而降低,并且没有泡沫形成,表明缺乏表面活性。加入0.1 M NaCl后,观察到稳定的泡沫形成和表面张力的轻微降低,这让人联想到非表面活性的静电性质。荧光和动态和静态光散射测量表明,具有最短疏水嵌段的共聚物没有形成胶束,而该嵌段共聚物形成了半径为25-30nm的球形胶束。这些观察结果表明,胶束的形成对于非表面活性也很重要。在添加氯化钠后,cmc不会降低,反而会增加,正如先前研究的非表面活性嵌段共聚物所观察到的。加入0.1 M NaCl后,形成的胶束非常稳定,并且其尺寸仅减小了〜5 nm。

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