Wang Juan, Pan Mingwang, Yuan Jinfeng, Lin Qianqian, Zhang Xiaopeng, Liu Gang, Zhu Lei
Institute of Polymer Science and Engineering, School of Chemical Engineering and Technology, Hebei University of Technology, Tianjin 300130, PR China.
Nanoscale. 2020 May 21;12(19):10863-10871. doi: 10.1039/d0nr01709d. Epub 2020 May 12.
Traditional methods for the construction of hollow particles with a hierarchical shell mainly rely on complicated chemical routes and removal of the templates. Herein, hollow mesoporous silica particles with a sphere-on-sphere (SOS) structure were successfully synthesized via a one-pot method using a novel "in situ synergistic soft-hard double template" strategy, that is, styrene (St) droplets as a soft template and in situ polymerized PS nano-domains as a hard template. The pre-hydrolysate derived from the silica precursor methyltriethoxysilane could anchor on the surface of the St droplets due to its amphiphilicity and then continue hydrolysis-condensation to form the mesoporous silica shell (MSS). Subsequently, MSS was used as a nanoreactor, and some of the in situ polymerized PS chains in the nanoreactor migrated to the outer surface of MSS due to the action of strong capillary force in the mesoporous channels, while some of the siloxane oligomers migrated to the surface due to their apparent interfacial activity, resulting in the hierarchical appearance of SOS. Furthermore, other intriguing hollow silica particles with a hollow sphere-on-sphere (HOS) structure were obtained by calcining the obtained SOS particles. The application of the as-prepared SOS and HOS particles showed their potential in the superhydrophobicity and detoxification fields, respectively.
构建具有分级壳层的中空颗粒的传统方法主要依赖于复杂的化学路线和模板去除。在此,采用一种新颖的“原位协同软硬双模板”策略,通过一锅法成功合成了具有球上球(SOS)结构的中空介孔二氧化硅颗粒,即苯乙烯(St)液滴作为软模板,原位聚合的聚苯乙烯(PS)纳米域作为硬模板。由二氧化硅前驱体甲基三乙氧基硅烷衍生的预水解产物因其两亲性可锚定在St液滴表面,然后继续水解缩合形成介孔二氧化硅壳层(MSS)。随后,MSS用作纳米反应器,由于介孔通道中强大的毛细作用力,纳米反应器中原位聚合的一些PS链迁移到MSS的外表面,而一些硅氧烷低聚物因其明显的界面活性迁移到表面,从而形成了SOS的分级外观。此外,通过煅烧所得的SOS颗粒,获得了其他具有空心球上球(HOS)结构的有趣中空二氧化硅颗粒。所制备的SOS和HOS颗粒的应用分别显示了它们在超疏水性和解毒领域的潜力。