研究目的
To synthesize and characterize polyimide-TiO2 nanocomposites and their derived carbon membranes for gas separation applications, and to evaluate their antibacterial and antioxidant activities.
研究成果
The synthesized PI/TiO2 nanocomposites and derived carbon membranes exhibited improved gas separation properties, with the C/PI/TiO2 15% membrane achieving high permeances. The materials also showed good antibacterial and antioxidant activities, making them promising for advanced membrane applications, though further optimization is needed to overcome the permeability-selectivity trade-off.
研究不足
The PI/TiO2 composite membranes showed a trade-off between permeability and selectivity, and the carbonization process required precise temperature control. The study focused on single gas permeation, with mixed gas tests showing some deviations, indicating potential issues with real-world applications.
1:Experimental Design and Method Selection:
The study involved synthesizing PI/TiO2 nanocomposites using sol-gel reaction, carbonizing them under vacuum or nitrogen flow at various temperatures, and characterizing the membranes for structural, thermal, mechanical, and gas transport properties. Antibacterial and antioxidant activities were also assessed.
2:Sample Selection and Data Sources:
Samples included pure PI, PI/TiO2 composites with 5%, 10%, and 15% TiO2, and derived carbon membranes. Gases used for permeation tests were He, CO2, O2, and N2 with 99.99% purity.
3:99% purity. List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: Equipment included FT-IR spectrophotometer, NMR spectrometer, TGA analyzer, SEM, TEM, XRD diffractometer, gas permeability tester, and materials such as PMDA, diamine monomers, Ti(OEt)4, and solvents like DMAc.
4:Experimental Procedures and Operational Workflow:
Synthesis of monomers, preparation of PAA and PI membranes, incorporation of TiO2 via sol-gel, carbonization at controlled temperatures, and characterization using various techniques. Gas permeation tests were conducted at room temperature with specific feed pressures.
5:Data Analysis Methods:
Permeability calculated using standard equations, selectivity determined as ratio of permeabilities, and data analyzed for trends in gas separation performance. Statistical methods were used for antibacterial and antioxidant assays.
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NMR Spectrometer
Avance 500
Bruker
Recording proton and carbon NMR spectra for structural characterization of monomers and polymers.
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Thermogravimetric Analyzer
DTG-60H
Shimadzu
Analyzing thermal stability and decomposition of polymer membranes.
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Scanning Electron Microscope
JSM-5600LV
JEOL
Examining morphology of membranes, including cross-sectional views.
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FT-IR Spectrophotometer
400D
Japan (specific brand not mentioned, inferred from context)
Recording FT-IR spectra to identify functional groups and chemical bonds in materials.
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TGA/SDTA
851e
Mettler Toledo
Thermogravimetric analysis for weight loss measurements.
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Tensile Tester
Series 5569 System
Instron
Measuring tensile properties of membrane samples.
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X-ray Diffractometer
PW1830
Philips
Obtaining XRD patterns to analyze crystallinity and d-spacing.
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Gas Permeability Tester
Pressure Permeability Tester
Labthink Instruments Co., Ltd.
Measuring gas transport properties of membranes using pure gases.
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Vacuum Pump
Drytel 1025
Adixen
Evacuating the system for gas permeation tests.
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Furnace
CTF 12/75/700
Carbolite
Carbonizing polymer membranes under controlled temperature and atmosphere.
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Ultraviolet-Visible Spectrophotometer
Not specified
Not specified
Measuring absorbance for antioxidant activity assays.
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