Taira Toshiaki, Yanagimoto Takaya, Sakai Kenichi, Sakai Hideki, Endo Akira, Imura Tomohiro
Research Institute for Chemical Process Technology, National Institute of Advanced Industrial Science and Technology (AIST).
Faculty of Science and Technology, Tokyo University of Science.
J Oleo Sci. 2018;67(9):1107-1115. doi: 10.5650/jos.ess18052.
In this study, an N-heterocyclic carbene (NHC)-based metallosurfactant (MS), NHC-PdMS, was synthesized, where Pd(II) was bound to the NHC framework via a robust Pd-carbene bond with NEt as a co-ligand. Surface tension measurements revealed that the critical micelle concentration (CMC) of NHC-PdMS (1.8×10 M) was one order of magnitude lower than that of its MS precursor (imidazolium bromide). Coordination of the MS precursor and NEt to Pd(II) also influenced micelle size; the hydrodynamic diameters of NHC-PdMS and the MS precursor were observed to be 25.8±5.6 nm and 2.5±0.3 nm, respectively. Furthermore, small angle X-ray scattering measurements indicated that NHC-PdMS exhibited liquid crystalline behavior above 26 wt%, with a spacing ratio of 1:2:3 for the first, second, and third Bragg peaks. To understand the role of the reactive interface, NHC-PdMS was also applied to aqueous catalytic reactions. Owing to its low CMC value, a catalytic amount of NHC-PdMS (3 mol%) provided the reactive interface, which facilitated the aqueous Mizoroki-Heck reaction of various aryl iodides and styrene in good yields (72-95%). These results suggest that MS formation results in a drastic change in selfassembling properties, which are important for the development of highly reactive chemical interfaces in water.
在本研究中,合成了一种基于氮杂环卡宾(NHC)的金属表面活性剂(MS),即NHC-PdMS,其中Pd(II)通过牢固的钯-卡宾键与NHC骨架相连,并以NEt作为共配体。表面张力测量结果表明,NHC-PdMS的临界胶束浓度(CMC)(1.8×10 M)比其MS前体(咪唑溴化物)低一个数量级。MS前体和NEt与Pd(II)的配位也影响胶束大小;观察到NHC-PdMS和MS前体的流体动力学直径分别为25.8±5.6 nm和2.5±0.3 nm。此外,小角X射线散射测量表明,NHC-PdMS在重量百分比高于26%时表现出液晶行为,第一、第二和第三布拉格峰的间距比为1:2:3。为了了解反应界面的作用,NHC-PdMS还被应用于水相催化反应。由于其较低的CMC值,催化量的NHC-PdMS(3 mol%)提供了反应界面,促进了各种芳基碘化物和苯乙烯的水相Mizoroki-Heck反应,产率良好(72-95%)。这些结果表明,MS的形成导致自组装性质发生剧烈变化,这对于在水中开发高活性化学界面非常重要。