In this study we used evaporation-induced self-assembly (EISA) as a facile approach for the synthesis, with amphiphilic poly(ethylene oxide-b-ε-caprolactone) (PEO-b-PCL) diblock copolymers as templates, of a family of mesoporous silicas with large, tunable pore sizes. Transmission electron microscopy (TEM), small-angle X-ray scattering (SAXS), and N2 adsorption–desorption isotherms revealed that the morphology transformed and the pore sizes of the mesoporous silica expanded upon increasing the PCL-to-PEO weight ratio in the templating PEO-b-PCL diblock copolymers. We also employed four kinds of homopolymers—two linear poly(ε-caprolactone)s [PCL20 (Mn = 2100) and PCL408 (Mn = 42 500)], a star poly(ethylene oxide)-functionalized silsesquioxane [PEO13–POSS (Mn = 5776)], and a linear poly(ethylene oxide) [PEO22 (Mn = 1000)]—as additives during the fabrication of these mesoporous silicas. Pore expansion and a unique mesophase transformation occurred when using PCL20 and PEO–POSS as the additive, respectively. Notably, we obtained highly ordered body-centered cubic (space group Im
m) mesoporous silicas with large cage-like pores of 10.1 and 22.6 nm when using EO114CL20 and EO114CL20/PEO–POSS, respectively, as templates for the EISA process.
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