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- W4226175099 startingPage "33474" @default.
- W4226175099 abstract "Undoped and manganese doped ZnS nanocrystals encapsulated with thioglycolic acid (ZnS-TGA) were synthesized and characterized with different techniques, and finally tested in the photodegradation of a methyl orange in aqueous solution under UV and sunlight irradiations. FTIR and X-ray diffraction results confirmed the functionalization of these nanocrystal surface by thioglycolic acid and the formation of crystalline structures of ZnS and Mn-doped ZnS with cubic and hexagonal phases. Calculated average size of ZnS nanocrystals was in the range of 2-3 nm. It was observed a blue shift of the absorbance threshold and the estimated bandgap energies were higher than that of Bulk ZnS thus confirming the quantum confinement effect of charge carriers. Photoluminescence spectra of ZnS nanocrystals exhibited emission in the range of 410-490 nm and the appearance of an additional emission band around 580 nm (2.13 eV) connected to the 4T1 → 6A1 transition of the Mn2+ions. Photodegradation of methylene orange with undoped and Mn-doped ZnS-TGA nanocrystals was investigated. Dye adsorption prior to photocatalysis using nanocrystals was studied via kinetic and equilibrium experiments. The maximum dye adsorption capacity on doped ZnS-TGA was ~ 26.98 mg/g. The adsorption kinetic was found to follow the pseudo-second-order kinetic model. A statistical physics model was used to analyze the equilibrium data where the calculated adsorption energy was 17-18 kJ/mol. It was concluded that the dye adsorption was associated to the hydrogen interaction where the removal process was feasible and multi-molecular at 25 °C. The photocatalytic activity of undoped ZnS nanoparticles under UV irradiation showed better efficiency than doped nanocrystals thus indicating that manganese doping generated a dropping of the photocatalytic degradation of the dye. Dye degradation efficiency of 81.37% using ZnS-TGA nanocrystals was achieved after 6 min, which indicated that ZnMnS-TGA nanocrystals may be considered an alternative low cost and environmental friendly material for facing water pollution caused by organic compounds via photodegradation processes." @default.
- W4226175099 created "2022-05-05" @default.
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- W4226175099 date "2022-01-14" @default.
- W4226175099 modified "2023-10-03" @default.
- W4226175099 title "Fast and effective catalytic degradation of an organic dye by eco-friendly capped ZnS and Mn-doped ZnS nanocrystals" @default.
- W4226175099 cites W1774704398 @default.
- W4226175099 cites W1964475126 @default.
- W4226175099 cites W1966271113 @default.
- W4226175099 cites W1979247381 @default.
- W4226175099 cites W1989045698 @default.
- W4226175099 cites W2005372393 @default.
- W4226175099 cites W2011881442 @default.
- W4226175099 cites W2013618981 @default.
- W4226175099 cites W20181686 @default.
- W4226175099 cites W2019923808 @default.
- W4226175099 cites W2023927066 @default.
- W4226175099 cites W2038318167 @default.
- W4226175099 cites W2056068048 @default.
- W4226175099 cites W2060530252 @default.
- W4226175099 cites W2060799393 @default.
- W4226175099 cites W2062757840 @default.
- W4226175099 cites W2065081719 @default.
- W4226175099 cites W2077963335 @default.
- W4226175099 cites W2087002485 @default.
- W4226175099 cites W2088625673 @default.
- W4226175099 cites W2090798711 @default.
- W4226175099 cites W2094041195 @default.
- W4226175099 cites W2112017750 @default.
- W4226175099 cites W2114173629 @default.
- W4226175099 cites W2121887077 @default.
- W4226175099 cites W2164838018 @default.
- W4226175099 cites W2218243490 @default.
- W4226175099 cites W2269727099 @default.
- W4226175099 cites W2279291981 @default.
- W4226175099 cites W2393419561 @default.
- W4226175099 cites W2466218196 @default.
- W4226175099 cites W2466520967 @default.
- W4226175099 cites W2470330663 @default.
- W4226175099 cites W2472113089 @default.
- W4226175099 cites W2508226303 @default.
- W4226175099 cites W2547672609 @default.
- W4226175099 cites W2557171109 @default.
- W4226175099 cites W2591321728 @default.
- W4226175099 cites W2611598268 @default.
- W4226175099 cites W2709682239 @default.
- W4226175099 cites W2770995324 @default.
- W4226175099 cites W2771545958 @default.
- W4226175099 cites W2772967449 @default.
- W4226175099 cites W2787923320 @default.
- W4226175099 cites W2792232570 @default.
- W4226175099 cites W2794543039 @default.
- W4226175099 cites W2803011689 @default.
- W4226175099 cites W2892199637 @default.
- W4226175099 cites W2903250845 @default.
- W4226175099 cites W2918979258 @default.
- W4226175099 cites W2921112434 @default.
- W4226175099 cites W2923642765 @default.
- W4226175099 cites W2965895767 @default.
- W4226175099 cites W2967092426 @default.
- W4226175099 cites W2969722457 @default.
- W4226175099 cites W2996040093 @default.
- W4226175099 cites W3000532027 @default.
- W4226175099 cites W3000575440 @default.
- W4226175099 cites W3001099764 @default.
- W4226175099 cites W3002363812 @default.
- W4226175099 cites W3019612058 @default.
- W4226175099 cites W3023905107 @default.
- W4226175099 cites W3027730038 @default.
- W4226175099 cites W3033290635 @default.
- W4226175099 cites W3044053672 @default.
- W4226175099 cites W3044769546 @default.
- W4226175099 cites W3092474251 @default.
- W4226175099 cites W3109955305 @default.
- W4226175099 cites W3118957173 @default.
- W4226175099 cites W3124655895 @default.
- W4226175099 cites W3135657049 @default.
- W4226175099 cites W3157712070 @default.
- W4226175099 cites W3168783300 @default.
- W4226175099 cites W3177466880 @default.
- W4226175099 cites W3194660762 @default.
- W4226175099 cites W3199014526 @default.
- W4226175099 cites W804767909 @default.
- W4226175099 doi "https://doi.org/10.1007/s11356-021-17860-1" @default.
- W4226175099 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/35028833" @default.
- W4226175099 hasPublicationYear "2022" @default.
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