Biosynthesis, Optical and Magnetic Properties of Fe-Doped ZnO/C Nanoparticles

Surfaces Pub Date : 2023-10-24 DOI:10.3390/surfaces6040028
Omar H. Abd-Elkader, Mai Nasrallah, Lotfi Aleya, Mohamed Nasrallah
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Abstract

Employing a self-combustion method supported by egg white, pure and Fe-doped ZnO/C nanoparticles successfully biosynthesized. XRD, FTIR, Raman, SEM/EDS and TEM measurements were used to characterize the pure and doped systems. The materials under investigation’s optical, surface and magnetic characteristics were recognized. Only one zinc oxide crystalline phase exhibiting a hexagonal shape comparable to wurtzite was present in the systems of pure and Fe-doped ZnO/C. Due to the variation in ionic radii, doping ZnO/C system with iron ions resulted in a decrease in unit cell volume; it revealed that ions of iron had been integrated into the lattice of zinc oxides. FTIR analysis shows characteristic vibration modes related to ZnO and that of carbon groups, confirming the formation of the ZnO/C system. In a perfect match with the IR data, which represent two bands at 1120 and 1399 cm−1 attributed to carbon groups, the Raman analysis shows that in the freshly manufactured materials, sp2 and disordered G and D carbon bands have both graphitized. Fe-doping of the ZnO/C system with different amounts of iron ions resulted in the change in the size and agglomeration of the particle’s system. The doped ZnO/C system has a surface area smaller than that of the pure system due to the decrease in both the mean pore radius and the total pore volume. Doping the ZnO/C system with 2 and 5 mol% Fe2O3 resulted in optical band gaps expanding from 3.17 eV to 3.27 eV and 3.57 eV, respectively. Due to the doping with iron ions, a magnetic transition from a fully diamagnetic state to a slightly ferromagnetic state was detected.
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fe掺杂ZnO/C纳米粒子的生物合成、光学和磁性能
采用蛋白支撑的自燃法,成功合成了纯铁掺杂ZnO/C纳米颗粒。采用XRD、FTIR、Raman、SEM/EDS和TEM等测试手段对纯体系和掺杂体系进行表征。识别了所研究材料的光学、表面和磁性特征。在纯ZnO/C和掺铁ZnO/C体系中,只有一种氧化锌晶相呈现出与纤锌矿相似的六角形。由于离子半径的变化,铁离子掺杂ZnO/C体系导致单体电池体积减小;它揭示了铁离子已经被整合到氧化锌的晶格中。FTIR分析显示了ZnO和碳基团的特征振动模式,证实了ZnO/C体系的形成。Raman分析结果表明,在新制备的材料中,sp2和无序的G和D碳带都发生了石墨化,这与碳基团在1120和1399 cm−1处的两个碳带的红外数据完全吻合。在ZnO/C体系中掺杂不同数量的铁离子,导致了颗粒体系尺寸和团聚的变化。由于平均孔半径和总孔体积的减小,掺杂ZnO/C体系的表面积比纯ZnO/C体系小。在ZnO/C体系中掺杂2和5 mol% Fe2O3,光学带隙分别从3.17 eV扩大到3.27 eV和3.57 eV。由于铁离子的掺杂,检测到从完全抗磁性态到微铁磁性态的磁性转变。
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