Nano-Science Center, Department of Chemistry, University of, Copenhagen, Denmark.
CHAD, Novartis, Basel, Switzerland.
Chemistry. 2018 May 7;24(26):6778-6786. doi: 10.1002/chem.201705524. Epub 2018 Apr 25.
Using density functional theory and the COSMO-RS implicit solvent model, we predict the structure and physical chemical properties of nanomicelles derived from the designer surfactant TPGS-750-M used in organic synthesis. We predict that the influence of chain length of the PEG region is low, while the termination of the PEG chain (-OH vs.-OCH ) plays a very large role. The interfacial tension is considerably lower between the micellar and water phases for the -OH than the -OCH terminated surfactant, and our calculations reproduce the large difference observed in average particle size as a function of PEG chain termination. We propose a structure for the nanoparticles formed by TPGS-750-M in water that is consistent with a ≈50 nm average diameter, which is significantly larger than a single micelle. According to the calculations, each nanoparticle would consist of 30-40 aggregated TPGS-750-M micelles forming a compartmentalized nanoparticle, with considerable amounts of water in the PEG region. The whole particle is stabilized by vitamin E succinate at the nanoparticle-water interface. In the presence of Zn dust or powder, the surfactant collides with the Zn surface, and by interactions with the hydrophobic inner cores, form organozinc species that are protected from the surrounding water. This explains why highly moisture-sensitive Negishi-like couplings take place in surfactant-water systems.
利用密度泛函理论和 COSMO-RS 隐式溶剂模型,我们预测了用于有机合成的设计表面活性剂 TPGS-750-M 衍生的纳米胶束的结构和物理化学性质。我们预测,PEG 区域链长的影响较低,而 PEG 链的末端(-OH 与-OCH )则起着非常重要的作用。与 -OCH 末端的表面活性剂相比,-OH 末端的表面活性剂在胶束相与水相之间的界面张力要低得多,我们的计算再现了平均粒径随 PEG 链末端变化的巨大差异。我们提出了 TPGS-750-M 在水中形成纳米颗粒的结构,该结构与平均直径约为 50nm 的结构一致,明显大于单个胶束。根据计算,每个纳米颗粒将由 30-40 个聚集的 TPGS-750-M 胶束组成,形成一个分隔的纳米颗粒,在 PEG 区域有相当数量的水。整个颗粒由纳米颗粒-水界面处的琥珀酸维生素 E 稳定。在锌尘或粉末存在下,表面活性剂与锌表面碰撞,并通过与疏水性内核的相互作用,形成受周围水保护的有机锌物种。这解释了为什么高度敏感的 Negishi 型偶联反应会在表面活性剂-水体系中发生。