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Updated: Jun 26, 2026

Preparation of Functional Silica Using a Bioinspired Method
Published on: August 1, 2018
Biogenic Silica as a Direct Sol-Gel Precursor for High-Efficiency MSU-X Mesostructure Assembly: Closing the Loop from
Ngo Ha-Son1,2, Le Van-Duong2,3, Cong Ngoc-Thang1,2
1Department of Oil Refining and Petrochemistry, Hanoi Unversity of Mining and Geology, 18 Vien Street, Dong Ngac Ward, Hanoi 100000, Vietnam.
Abstract:
Direct utilization of biomass-derived silica in neutral surfactant-templated mesoporous synthesis remains underexplored with respect to mesostructure control and functional integration. High-purity silica extracted from acid-treated rice husk ash (~98.4 wt% SiO2) was employed as the sole precursor in a fluoride-assisted sol-gel route to synthesize MSU-X frameworks without chemical modification. Systematic parametric variation-pH, Si/surfactant ratio, hydrothermal temperature, and aging duration-establishes quantitative structure-processing correlations. Under optimized conditions (pH 2, Si/Tergitol = 8, 60 °C, 96 h), the resulting material exhibits a wormhole-like mesoarchitecture with a BET surface area of 816 m2 g-1, mean pore diameter of ~3.6 nm, and three-dimensionally interconnected channels, confirmed by SAXS, TEM, and N2 sorption. EDXRF analysis confirms effective impurity removal and high silica incorporation efficiency (~95-96%); thermal stability persists to 700 °C, with incipient crystallization near 800 °C. As a functional demonstration, MSU-X served as an anti-agglomeration scaffold for ZIF-8 crystallization during DDT adsorption. Despite attenuated kinetics relative to pristine ZIF-8-where severe agglomeration occludes active imidazole nodes-the Z8/MSU-X composite achieved near-quantitative DDT removal (74.10 mg g-1). This performance stems from the mesoporous matrix driving size-confined, highly dispersed ZIF-8 growth, thereby maximizing active-site exposure. Operating within a reagent-limited regime rather than a capacity-saturated boundary, this efficient depletion confirms that the scaffold successfully suppresses site loss. Ultimately, these findings validate biogenic silica as a directly integrable precursor for tailored mesostructure assembly, positioning agricultural waste as a high-performance feedstock for hierarchical adsorption architectures.

