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Fontão NC, Ferrari LN, Sapatieri JC, Rezwan K, Wilhelm M. Influence of the Pyrolysis Temperature and TiO2-Incorporation on the Properties of SiOC/SiC Composites for Efficient Wastewater Treatment Applications. MEMBRANES 2022; 12:membranes12020175. [PMID: 35207096 PMCID: PMC8875749 DOI: 10.3390/membranes12020175] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 01/05/2022] [Revised: 01/18/2022] [Accepted: 01/28/2022] [Indexed: 02/01/2023]
Abstract
This study focuses on the development of porous ceramer and SiOC composites which are suitable for microfiltration applications, using a mixture of polysiloxanes as the preceramic precursor. The properties of the membranes—such as their pore size, hydrophilicity, specific surface area, and mechanical resistance—were tailored in a one-step process, according to the choice of pyrolysis temperatures (600–1000 °C) and the incorporation of micro- (SiC) and nanofillers (TiO2). Lower pyrolysis temperatures (<700 °C) allowed the incorporation of TiO2 in its photocatalytically active anatase phase, enabling the study of its photocatalytic decomposition. The produced materials showed low photocatalytic activity; however, a high adsorption capacity for methylene blue was observed, which could be suitable for dye-removal applications. The membrane performance was evaluated in terms of its maximum flexural strength, water permeation, and separation of an oil-in-water emulsion. The mechanical resistance increased with an increase of the pyrolysis temperature, as the preceramic precursor underwent the ceramization process. Water fluxes varying from 2.5 to 370 L/m2·h (2 bar) were obtained according to the membrane pore sizes and surface characteristics. Oil-rejection ratios of 81–98% were obtained at an initial oil concentration of 1000 mg/L, indicating a potential application of the produced PDC membranes in the treatment of oily wastewater.
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Affiliation(s)
- Natália C. Fontão
- Advanced Ceramics, University of Bremen, 28359 Bremen, Germany; (N.C.F.); (L.N.F.); (J.C.S.); (K.R.)
| | - Lucas N. Ferrari
- Advanced Ceramics, University of Bremen, 28359 Bremen, Germany; (N.C.F.); (L.N.F.); (J.C.S.); (K.R.)
- Department of Mechanical Engineering, Federal University of Santa Catarina, Florianopolis 88040-900, Brazil
| | - Joice C. Sapatieri
- Advanced Ceramics, University of Bremen, 28359 Bremen, Germany; (N.C.F.); (L.N.F.); (J.C.S.); (K.R.)
- Department of Chemical Engineering and Food Engineering, Federal University of Santa Catarina, Florianopolis 88040-900, Brazil
| | - Kurosch Rezwan
- Advanced Ceramics, University of Bremen, 28359 Bremen, Germany; (N.C.F.); (L.N.F.); (J.C.S.); (K.R.)
- MAPEX—Centre for Materials and Processes, University of Bremen, 28359 Bremen, Germany
| | - Michaela Wilhelm
- Advanced Ceramics, University of Bremen, 28359 Bremen, Germany; (N.C.F.); (L.N.F.); (J.C.S.); (K.R.)
- Correspondence:
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Li JY, Wang DK, Lin YT, Wey MY, Tseng HH. Homogeneous sub-nanophase network tailoring of dual organosilica membrane for enhancing CO2 gas separation. J Memb Sci 2022. [DOI: 10.1016/j.memsci.2021.120170] [Citation(s) in RCA: 4] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/17/2022]
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