| Literature DB >> 35480214 |
Mohamed Khairy1, Abdelrahman H Mahmoud1, Kamal M S Khalil1.
Abstract
LaFeO3 nanospheres with an orthorhombic perovskite structure were synthesized by a sol-gel autocombustion method in the presence of different citric acid ratios (x = 2, 4, 8, and 16) and utilized for the photocatalytic conversion of o-aminophenol (OAP) to 2-aminophenoxazine-3-one (APX) for the first time. OAP is one of the most toxic phenolic derivatives used as a starting material in many industries; however, the dimerization product APX has diverse therapeutic properties. Photocatalytic conversion was carried out in ethanol/water and acetonitrile/water mixtures in the absence and presence of molecular oxygen at ambient temperature via the oxidative coupling reaction that mimics phenoxazinone synthase-like activity. The LaFeO3 samples showed a superior photocatalytic activity of OAP to APX with rate constants of 0.43 and 0.92 min-1 in the absence and presence of molecular oxygen, respectively. Thus, the LaFeO3 nanozymes could be used as promising candidates in industrial water treatment and phenoxazinone synthase-like activity. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35480214 PMCID: PMC9033189 DOI: 10.1039/d1ra02295d
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1TEM micrographs of the LaFeO3 samples synthesized in the presence of different citric acid ratios of (A) 2, (B) 4, (C) 8, and (D) 16 annealed at 500 °C.
Fig. 2(A) XRD and (B) N2 adsorption/desorption isotherms of LaFeO3 samples synthesized via the sol–gel autocombustion method using different citric acid ratios.
Fig. 3(A) Diffuse reflectance (% R) spectra and Kubelka–Munk curves, and (B) FTIR spectra of the LaFeO3 samples synthesized via the sol–gel autocombustion method by using different citric acid ratios.
Fig. 4UV/Vis spectra for the photocatalytic conversion of OAP over (A) LFC4 and (B) LFC16 samples in ethanol/water mixture solution under nitrogen atmosphere.
Fig. 5Analysis of absorbance time dependence in (A) ethanol/water under nitrogen atmosphere and (B) acetonitrile/water under an inert atmosphere.
Scheme 1Photocatalytic conversion mechanism of OAP to APX over LaFeO3 at pH 7.
Fig. 6Integrated first-order kinetics for the photocatalytic oxidation of OAP in (A) ethanol/water under nitrogen atmosphere and (B) acetonitrile/water under nitrogen atmosphere.
Fig. 7(A) Analysis of absorbance-time dependence in acetonitrile/water mixture in the presence of O2 atmosphere under dark and light conditions, and (B) integrated first-order kinetics for the photocatalytic conversion of OAP in an oxygen atmosphere.
Photocatalytic activity of LaFeO3 NPs toward OAP conversion compared to previous studies
| Catalyst | Reaction condition | Rate constant | Ref. |
|---|---|---|---|
| Organo-tin( | [OAP] = 0.015 M, methanol (5%) as a solvent and [catalyst] = 15 × 10−5 M, at 38 °C, | 1.2286 × 10−5 mol L−1 min−1 |
|
| K3[Mn(C2O4)3] | [OAP] = 7.35 × 10−4 M in ethanol solution, at 25 °C | 11.91 × 10−4 s−1 |
|
| K3[Co(C2O4)3] | 10.58 × 10−4 s−1 | ||
| K2[Cu(C2O4)2] | — | ||
| 2,2,6,6-Tetramethyl-1-piperidinyloxyl (TEMPO) | [OAP] = 0.11 M, [TEMPO] = 0.03 M, in methanol, under dioxygen at 50 °C | 2.47 × 10−4 mol−1 dm3 s−1 |
|
| Cobaloxime( |
| 1.56 × 10−2 s−1 |
|
| LaFeO3 | 3% acetonitrile as a solvent, [LaFeO3] = 0.0015 M, [OAP] = 0.5 mM, pH 7, at 25 °C under N2, and light intensity = 100 mW cm−2 | 7.2 × 10−3 s−1 | This work |
| 3% acetonitrile as a solvent, [LaFeO3] = 0.0015 M, [OAP] = 0.5 mM, pH 7, at 25 °C under O2, and light intensity = 100 mW cm2 | 15.2 × 10−3 s−1 |