<p>In this study, MnSO<sub>4</sub> doped ZnTe nanocomposites were synthesized via a polyethylene glycol (PEG) assisted thermal process (190&#xa0;°C, 9&#xa0;h), and structural, morphological, optical, and magnetic properties were systematically studied to establish correlations between structure and property. By analyzing Williamson-Hall data via X-ray diffraction (XRD), we confirmed that the Mn<sup>2+</sup> had been successfully incorporated into the ZnTe lattice, indicating peak shifts, new reflections (211), (103) and strains within the lattice. Raman spectroscopy revealed phonon softening shift from 177&#xa0;cm<sup>−1</sup> to 170—175&#xa0;cm<sup>−1</sup>, asymmetric broadening, and Mn-Te vibrational modes at 250&#xa0;cm<sup>−1</sup>, indicating Mn<sup>2+</sup> induced lattice distortion. Polycrystalline particles were observed with enhanced surface roughness and porosity when scanned with scanning electron microscopes (SEM’s), and their crystallinity was confirmed with selected-area electron diffraction (SAED’s). TEM observations revealed that MnSO<sub>4</sub> particles dispersed on the ZnTe support were non-uniform and relatively large, indicating significant particle aggregation. As shown in PL spectroscopy, defects 440&#xa0;nm—536&#xa0;nm are generated by Mn<sup>2+</sup> intra-<i>d</i>-transitions and defects caused by doping, for example, Zn vacancies have been observed. Interestingly, vibration sample magnetometer measurements demonstrated distinct hysteresis loops 300&#xa0;K at room temperature, highlighting the potential for spintronics applications. In this work, we demonstrate that MnSO<sub>4</sub> doped ZnTe can serve as both an optoelectronic device and a magnetic device with tunable magnetic and optical properties.</p>

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Tailoring spintronic—optoelectronic functionality in MnSO4 doped ZnTe nanocomposites via lattice strain, defect engineering, and room temperature magnetic ordering

  • Kasinathan Kaviyarasu,
  • Lebogang Kotsedi

摘要

In this study, MnSO4 doped ZnTe nanocomposites were synthesized via a polyethylene glycol (PEG) assisted thermal process (190 °C, 9 h), and structural, morphological, optical, and magnetic properties were systematically studied to establish correlations between structure and property. By analyzing Williamson-Hall data via X-ray diffraction (XRD), we confirmed that the Mn2+ had been successfully incorporated into the ZnTe lattice, indicating peak shifts, new reflections (211), (103) and strains within the lattice. Raman spectroscopy revealed phonon softening shift from 177 cm−1 to 170—175 cm−1, asymmetric broadening, and Mn-Te vibrational modes at 250 cm−1, indicating Mn2+ induced lattice distortion. Polycrystalline particles were observed with enhanced surface roughness and porosity when scanned with scanning electron microscopes (SEM’s), and their crystallinity was confirmed with selected-area electron diffraction (SAED’s). TEM observations revealed that MnSO4 particles dispersed on the ZnTe support were non-uniform and relatively large, indicating significant particle aggregation. As shown in PL spectroscopy, defects 440 nm—536 nm are generated by Mn2+ intra-d-transitions and defects caused by doping, for example, Zn vacancies have been observed. Interestingly, vibration sample magnetometer measurements demonstrated distinct hysteresis loops 300 K at room temperature, highlighting the potential for spintronics applications. In this work, we demonstrate that MnSO4 doped ZnTe can serve as both an optoelectronic device and a magnetic device with tunable magnetic and optical properties.