nitrophenols has been researched along with mequinol* in 2 studies
2 other study(ies) available for nitrophenols and mequinol
Article | Year |
---|---|
Mechanism of p-substituted phenol oxidation at a Ti4O7 reactive electrochemical membrane.
This research investigated the removal mechanisms of p-nitrophenol, p-methoxyphenol, and p-benzoquinone at a porous Ti4O7 reactive electrochemical membrane (REM) under anodic polarization. Cross-flow filtration experiments and density functional theory (DFT) calculations indicated that p-benzoquinone removal was primarily due to reaction with electrochemically formed OH(•), while the dominant removal mechanism of p-nitrophenol and p-methoxyphenol was a function of the anodic potential. At low anodic potentials (1.7-1.8 V/SHE), p-nitrophenol and p-methoxyphenol were removed primarily by an electrochemical adsorption/polymerization mechanism on the REM. Increasing anodic potentials (1.9-3.2 V/SHE) resulted in the electroassisted adsorption mechanism contributing far less to p-methoxyphenol removal compared to p-nitrophenol. DFT calculations indicated that an increase in anodic potential resulted in a shift in p-methoxyphenol removal from a 1e(-) direct electron transfer (DET) reaction that resulted in radical formation and significant adsorption/polymerization, to a 2e(-) DET reaction that formed nonadsorbing products (i.e., p-benzoquinone). However, the anodic potentials were too low for the 2e(-) DET reaction to be thermodynamically favorable for p-nitrophenol. The decreased COD adsorption for p-nitrophenol at higher anodic potentials was attributed to reaction of soluble/adsorbed organics with OH(•). These results provide the first mechanistic explanation for p-substituted phenolic compound removal during advanced electrochemical oxidation processes. Topics: Adsorption; Anisoles; Benzoquinones; Biological Oxygen Demand Analysis; Electrochemistry; Membranes, Artificial; Models, Chemical; Molecular Conformation; Nitrophenols; Oxidation-Reduction; Phenols; Porosity; Quantum Theory; Thermodynamics; Time Factors; Titanium | 2014 |
Measurement of phenols dearomatization via electrolysis: the UV-Vis solid phase extraction method.
Dearomatization levels during electrochemical oxidation of p-methoxyphenol (PMP) and p-nitrophenol (PNP) have been determined through UV-Vis spectroscopy using solid phase extraction (UV-Vis/SPE). The results show that the method is satisfactory to determine the ratio between aromatic compounds and aliphatic acids and reaction kinetics parameters during treatment of wastewater, in agreement with results obtained from numerical deconvolution of UV-Vis spectra. Analysis of solutions obtained from electrolysis of substituted phenols on antimony-doped tin oxide (SnO(2)--Sb) showed that an electron acceptor substituting group favored the aromatic ring opening reaction, preventing formation of intermediate quinone during oxidation. Topics: Anisoles; Antimony; Electrodes; Electrolysis; Hydrocarbons, Aromatic; Nitrophenols; Oxidation-Reduction; Solid Phase Extraction; Solutions; Spectrophotometry, Ultraviolet; Tin Compounds | 2010 |