| Literature DB >> 34064537 |
Muhammad Arif Khan1,2, Nafarizal Nayan1, Mohd Khairul Ahmad1, Soon Chin Fhong1, Muhammad Tahir3, Riyaz Ahmad Mohamed Ali1, Mohamed Sultan Mohamed Ali4.
Abstract
In this work, advanced nanoscale surface characterization of CuO Nanoflowers synthesized by controlled hydrothermal approach for significant enhancement of catalytic properties has been investigated. The CuO nanoflower samples were characterized by field-emission scanning electron microscopy (FE-SEM), X-ray powder diffraction (XRD), X-ray photoelectron spectroscopy (XPS), Raman spectroscopy, high-resolution transmission electron microscopy (HR-TEM), selected-area electron diffraction (SAED), high-angular annular dark field scanning transmission electron microscopy (HAADF-STEM) with elemental mapping, energy dispersive spectroscopy (STEM-EDS) and UV-Vis spectroscopy techniques. The nanoscale analysis of the surface study of monodispersed individual CuO nanoflower confirmed the fine crystalline shaped morphology composed of ultrathin leaves, monoclinic structure and purified phase. The result of HR-TEM shows that the length of one ultrathin leaf of copper oxide nanoflower is about ~650-700 nm, base is about ~300.77 ± 30 nm and the average thickness of the tip of individual ultrathin leaf of copper oxide nanoflower is about ~10 ± 2 nm. Enhanced absorption of visible light ~850 nm and larger value of band gap energy (1.68 eV) have further supported that the as-grown material (CuO nanoflowers) is an active and well-designed surface morphology at the nanoscale level. Furthermore, significant enhancement of catalytic properties of copper oxide nanoflowers in the presence of H2O2 for the degradation of methylene blue (MB) with efficiency ~96.7% after 170 min was obtained. The results showed that the superb catalytic performance of well-fabricated CuO nanoflowers can open a new way for substantial applications of dye removal from wastewater and environment fields.Entities:
Keywords: CuO nanoflowers; HAADF-STEM; HR-TEM; SAED; XPS; hydrogen peroxide; nanoscale surface characterization; superb catalytic performance; ultrathin leaves; wide absorption
Year: 2021 PMID: 34064537 PMCID: PMC8124738 DOI: 10.3390/molecules26092700
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Growth mechanism for the formation of 3D hierarchical CuO nanoflowers through hydrothermal technique.
Figure 1FE-SEM images and EDX analysis of CuO nanoflowers synthesized by controlled hydrothermal approach. (a,b) Low magnification; (c) high magnification; (d) EDX spectrum with elemental composition.
Figure 2X-ray diffraction pattern of copper oxide nanoflowers.
Figure 3(a,b) XPS high-resolution (core level) or narrow energy range spectra of Cu 2p and O 1s, respectively, from as-synthesized CuO nanoflowers, respectively; (c) Raman analysis of CuO nanoflowers sample.
Figure 4High-resolution TEM analysis of single copper oxide nanoflower. (a–f) TEM and HR-TEM images from low magnification to high magnification; (g) d-spacing; (h) SAED analysis; (i) HAADF-STEM.
Figure 5HAADF-STEM analysis of Single CuO Nanoflower. (a) HAADF-STEM image; (b,c) Chemical mapping of O and Cu, respectively; (d) STEM-EDS spectrum.
Figure 6UV–visible absorption, energy band gap and degradation of MB dye solution in dark. (a) UV–visible absorption CuO nanoflowers; (b) Band gap of copper oxide nanoflowers; (c) Time profile degradation of; (d) Time profile concentration ratio plot of ; (e) % Degradation of MB dye in CuO NFs, and ; (f) Plot of ln(St/So) versus t (time).
Copper oxide nanoflowers in the presence of for the degradation of MB dye solution.
| Nanocatalysts & Morphology | Methods | Band Gap (eV) | Reaction Condition | Reaction Temp | Reaction Time for Optimum Degradation | %D | R2 | K (Rate Constant) min−1 | Ref. |
|---|---|---|---|---|---|---|---|---|---|
| CuO NFs | Hydrothermal Technique | 1.43 | 20 mg CuO + 20 mL | Room Temp | 10 h | 96.0% | --- | 0.00320 | [ |
| CuO NFs | Hydrothermal Technique | --- | 20 mg CuO + 20 mL | Room Temp | 24 h | 72% | --- | 0.000867 | [ |
| CuO NFs | Hydrothermal Technique | --- | 20 mg CuO + 170 mg of | 35 °C | 300 min | 91% | --- | 0.00836 | [ |
| CuO NFs (OP-80 °C-10) | Chemical Precipitation | --- | 20 mg CuO + 20 mL | 35 °C | 210 min | 95.7% | 0.996 | 0.00969 | [ |
| CuO NFs | Hydrothermal Technique | 1.68 | 20 mg CuO + 20 mL | 30 °C | 170 min | 96.7% | 0.998 | 0.0196 | Current work |
MB: methylene blue, NFs: nanoflowers, % D: Percentage degradation, R2: Regression coefficient.