CNRS, Univ. Bordeaux, CRPP, UMR5031, 115 Avenue Albert Schweitzer, 33600 Pessac, France; Institut Jean Barriol, UMR CNRS 7053 L2CM, Université de Lorraine, Faculté des Sciences et Technologies, BP 70239, 54506 Vandoeuvre lès Nancy Cedex, France.
Institut Jean Barriol, UMR CNRS 7053 L2CM, Université de Lorraine, Faculté des Sciences et Technologies, BP 70239, 54506 Vandoeuvre lès Nancy Cedex, France.
J Colloid Interface Sci. 2019 Jan 1;533:385-400. doi: 10.1016/j.jcis.2018.08.068. Epub 2018 Aug 23.
Traditional porous monoliths Si(HIPE) (High Internal Phase Emulsion), prepared from the Tetradecyltrimethylammonium Bromide (TTAB)/dodecane/water system, offer high specific surface area, mainly due to microporosity. Aside, mesoporous materials SBA-15, prepared from Pluronic P123, have a high specific surface area, but are obtained as powder, which limits their applications. Starting from the mixed TTAB-P123 surfactant, it is expected to tune the mesoporosity of Si(HIPE), while keeping their monolithic character. The ternary TTAB/P123/water phase diagram was established by varying the weight ratio between these two surfactants. The micellar structure as well as the structural parameters of the liquid crystal domains were determined by SAXS (Small Angle X-ray Scattering). The effect of dodecane solubilization was also investigated and concentrated emulsions were formulated from the (P123/TTAB)/dodecane/water systems. After this soft matter dedicated study, the acquired knowledge was transferred toward the hierarchical porous silica generations, where the sol-gel process is involved. Mixing P123 with TTAB, macro-mesoporous monolithic silica with an enhanced contribution of the specific surface area due to mesoporosity can be prepared. The variation of the TTAB/P123 weight ratio allows controlling the porosity at the mesoscale. Moreover, the macroporosity can be tuned by changing the preparation method, by mixing either the two micellar solutions or directly the two surfactants prior the emulsification process.
传统的多孔单体硅(HIPE)(高内相乳液)由十四烷基三甲基溴化铵(TTAB)/正十二烷/水体系制备而成,具有高比表面积,主要归因于微孔。此外,由 Pluronic P123 制备的介孔材料 SBA-15 具有高比表面积,但呈粉末状,这限制了它们的应用。从混合 TTAB-P123 表面活性剂开始,有望调整 Si(HIPE) 的介孔性,同时保持其单体特性。通过改变这两种表面活性剂之间的重量比,建立了三元 TTAB/P123/水相图。通过小角 X 射线散射(SAXS)确定胶束结构以及液晶畴的结构参数。还研究了正十二烷的增溶作用,并从(P123/TTAB)/正十二烷/水体系中配制了浓缩乳液。在进行了这种专门的软物质研究之后,将获得的知识应用于涉及溶胶-凝胶过程的分级多孔硅的生成。混合 P123 和 TTAB,可以制备具有增强的比表面积的大孔介孔单体硅。通过改变 TTAB/P123 的重量比,可以控制介观尺度上的孔隙率。此外,通过改变制备方法,在乳化过程之前混合两种胶束溶液或直接混合两种表面活性剂,可以调节大孔率。