| Literature DB >> 35629531 |
Shahroz Saleem1, Muhammad Irfan2, Muhammad Yasin Naz2, Shazia Shukrullah1, Muhammad Adnan Munir1, Muhammad Ayyaz1, Abdullah Saeed Alwadie2, Stanislaw Legutko3, Jana Petrů4, Saifur Rahman2.
Abstract
This study investigated the production of Cu2+-doped CoFe2O4 nanoparticles (CFO NPs) using a facile sol-gel technique. The impact of Cu2+ doping on the lattice parameters, morphology, optical properties, and electrical properties of CFO NPs was investigated for applications in electrical devices. The XRD analysis revealed the formation of spinel-phased crystalline structures of the specimens with no impurity phases. The average grain size, lattice constant, cell volume, and porosity were measured in the range of 4.55-7.07 nm, 8.1770-8.1097 Å, 546.7414-533.3525 Å3, and 8.77-6.93%, respectively. The SEM analysis revealed a change in morphology of the specimens with a rise in Cu2+ content. The particles started gaining a defined shape and size with a rise in Cu2+ doping. The Cu0.12Co0.88Fe2O4 NPs revealed clear grain boundaries with the least agglomeration. The energy band gap declined from 3.98 eV to 3.21 eV with a shift in Cu2+ concentration from 0.4 to 0.12. The electrical studies showed that doping a trace amount of Cu2+ improved the electrical properties of the CFO NPs without producing any structural distortions. The conductivity of the Cu2+-doped CFO NPs increased from 6.66 × 10-10 to 5.26 × 10-6 ℧ cm-1 with a rise in Cu2+ concentration. The improved structural and electrical characteristics of the prepared Cu2+-doped CFO NPs made them a suitable candidate for electrical devices, diodes, and sensor technology applications.Entities:
Keywords: CoFe2O4 nanoparticles; Cu2+ doping; electrical properties; spinel ferrites
Year: 2022 PMID: 35629531 PMCID: PMC9144412 DOI: 10.3390/ma15103502
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.748
Figure 1XRD patterns of CFO NPs doped with Cu2+ ions.
Structural properties of CFO NPs doped with Cu2+ ions.
| CFO NPs | Grain Size (nm) | d-Spacing | Lattice Constant | Lattice Volume (Å3) | X-ray Density (g/cm3) | Bulk Density (g/cm3) | Porosity (%) |
|---|---|---|---|---|---|---|---|
| Cu0.04Co0.96Fe2O4 | 4.55 | 2.4655 | 8.1770 | 546.7414 | 2.851 | 2.601 | 8.77 |
| Cu0.08Co0.92Fe2O4 | 5.33 | 2.4584 | 8.1535 | 542.0411 | 2.803 | 2.582 | 7.85 |
| Cu0.12Co0.88Fe2O4 | 7.07 | 2.4452 | 8.1097 | 533.3525 | 2.742 | 2.553 | 6.93 |
Dislocation density, crystallite size, and microstrain of Cu2+-doped CFO NPs.
| Samples | Crystallite Size ( | Dislocation Density (m−2) | Strain (×10−4) |
|---|---|---|---|
| Cu0.04Co0.96Fe2O4 | 4.55 | 0.000280 | 1.083 ± 0.0045 |
| Cu0.08Co0.92Fe2O4 | 5.33 | 0.000290 | 0.842 ± 0.0041 |
| Cu0.12Co0.88Fe2O4 | 7.07 | 0.000376 | 0.925 ± 0.0031 |
Figure 2W–H plots of CFO NPs doped with different concentrations of Cu2+ ions. (a) Cu0.04Co0.96Fe2O4, (b) Cu0.08Co0.92Fe2O4, (c) Cu0.12Co0.88Fe2O4.
Figure 3SEM images of (a) Cu0.04Co0.96Fe2O4 (b) Cu0.08Co0.0.92Fe2O4, and (c) Cu0.12Co0.88Fe2O4 nanoparticles.
Figure 4UV−VIS absorption patterns of Cu2+ of CFO NPs doped with different concentrations of Cu2+ ions. (a) Cu0.04Co0.96Fe2O4, (b) Cu0.08Co0.92Fe2O4, (c) Cu0.12Co0.88Fe2O4.
Figure 5I–V characteristics of CFO NPs doped with different concentrations of Cu2+ ions. (a) Cu0.04Co0.96Fe2O4, (b) Cu0.08Co0.92Fe2O4, (c) Cu0.12Co0.88Fe2O4.
Electrical characteristics of Cu2+-doped CFO nanoparticles.
| Sample ID | Resistivity ( | Conductivity (σ) |
|---|---|---|
| Cu0.04Co0.96Fe2O4 | 1.5 × 109 | 6.66 × 10−10 |
| Cu0.08Co0.92Fe2O4 | 1.7 × 107 | 5.88 × 10−8 |
| Cu0.12Co0.8Fe2O4 | 1.9 × 105 | 5.26 × 10−6 |