研究目的
To investigate the photodegradation products of brilliant blue FCF in the presence of both UV radiation and TiO2 in aqueous solution and in the solid state.
研究成果
The photodegradation of brilliant blue FCF by TiO2/UV primarily involves sequential loss of methyl benzene sulfonic acid groups and ethyl groups, with evidence of aryl-oxidative processes. The degradation produces blue-shifted intermediates, and solid-state analysis shows associations between dye and TiO2.
研究不足
The MALDI-MS results may be biased due to the ionization laser wavelength (355 nm) potentially causing additional photodegradation, and interactions between the HCCA matrix and TiO2 could enhance photocatalytic decomposition. The absence of certain aryl-oxidized products might be due to adsorption to TiO2 nanoparticles, complicating pathway identification.
1:Experimental Design and Method Selection:
The study investigated the UV-initiated photodegradation of brilliant blue FCF with TiO2 in both aqueous and solid states using MALDI-MS for solid-state analysis, and LC/MS and UV-Vis spectroscopy for solution-state analysis.
2:Sample Selection and Data Sources:
Samples included aqueous solutions of brilliant blue FCF with TiO2 and solid mixtures on MALDI plates.
3:List of Experimental Equipment and Materials:
Chemicals used were Milli-Q water, HPLC grade acetonitrile, TiO2 Aeroxide P25, brilliant blue FCF, ammonium formate, formic acid, HCCA matrix, and others. Equipment included MALDI-MS (Bruker UltraFleXtreme), LC/MS (Thermo LTQ Orbitrap XL with Accela system), HPLC (Shimadzu Prominence), UV-Vis spectrophotometer (PerkinElmer LAMBDA 1050), UV chamber with Osram ultravitalux lamps, UV digital light meter (General Tools & Instruments UV513 AB), freeze dryer (Martin Christ Alpha 2-4 LD Plus), and filters (Millipore Express PES membrane).
4:Experimental Procedures and Operational Workflow:
For solution state, samples were exposed to UV, filtered, and analyzed by LC/MS and UV-Vis. For solid state, samples on MALDI plates were exposed to UV and analyzed by MALDI-MS. Specific steps included sample preparation, UV exposure with intensity monitoring, filtration, and instrumental analysis with detailed parameters.
5:Data Analysis Methods:
Mass spectrometry data were analyzed for m/z values and assignments, UV-Vis data for absorbance changes and shifts, and chromatographic data for retention times and peak integration.
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MALDI-TOF/TOF Mass Spectrometer
UltraFleXtreme
Bruker Daltonik
Analysis of photodegradation products in solid-state samples using matrix-assisted laser desorption/ionization.
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Liquid Chromatography Mass Spectrometer
LTQ Orbitrap XL
Thermo Fisher Scientific
Analysis of photodegradation products in solution-state samples using liquid chromatography coupled with mass spectrometry.
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High Performance Liquid Chromatography System
Prominence Preparative HPLC System
Shimadzu
Chromatographic analysis of samples with UV/Visible detection.
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UV/Vis/NIR Spectrophotometer
LAMBDA 1050
PerkinElmer
Measurement of absorbance changes and shifts in solution samples during UV exposure.
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HPLC Column
VisionHT C18 HL 5μ Ultra High-Pressure Column
Thermo Fisher Scientific
Chromatographic separation in HPLC analysis.
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Ion Trap Mass Spectrometer
LCQ Fleet
Thermo Fisher Scientific
Direct infusion mass spectrometry experiments.
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Freeze Dryer
Alpha 2-4 LD Plus
Martin Christ
Freeze drying of filtered samples for further analysis.
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UV Digital Light Meter
UV513 AB Digital UVC Meter
General Tools & Instruments
Monitoring UV intensity during exposure experiments.
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UV Lamp
ultravitalux 300 W AC
Osram
Providing UV radiation for photodegradation experiments.
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Particle Size Filter
Express Polyethersulfone (PES) membrane
MilliporeSigma
Removal of TiO2 nanoparticles from solution samples after UV exposure.
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Reverse Phase Column
C18(2), 150 x 2 mm, 5 μm, 100 ?
Phenomenex
Chromatographic separation in LC/MS analysis.
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