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Synthesis of Ni doped barium hexaferrite by microemulsion route to enhance the visible light-driven photocatalytic degradation of crystal violet dye

机译:微乳液路线合成Ni掺杂六氟酸钡增强可见光驱动光催化降解结晶紫染料

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? 2022 Elsevier Ltd and Techna Group S.r.l.The pristine and Ni doped BaNixFe12-xO19 (x = 0.0, 0.2, 0.4, 0.6, 0.8, 1.0) NPs have been fabricated via facile microemulsion approach and the impact of dopants was explored based dielectric, optical, structural and the photocatalytic properties of BaNixFe12-xO19 nanoparticles. X-ray diffraction and Raman study confirmed the formation of regular hexagonal geometry with space group P63/mmc with crystallite size in 32–50 nm range. Functional groups were identified using FTIR analysis. The remanence (Pr), saturation polarization (Ps) and coercivity (Hc) was explored by P-E loop analysis and the value of Pr and Ps was enhanced with the concentration of dopant. According to PL spectra, highly doped materials had a higher charge separation (e?- h+) and low recombination rate, which resulted in higher photocatalytic degradation activity of fabricated nanomaterials. The optical band gap was found to be 1.78 eV versus undoped (2.60 eV for pristine BaFe12O19). Due to polarizations, the dielectric loss, dielectric constant and tangent loss values were declined, while AC conductivity was enhanced. Photocatalytic performance of doped and undoped samples under visible right irradiation was studied for crystal violet dye. For 100 min exposure to visible light, the highly doped catalyst exhibits 97 degradation versus 60 in case of pristine this is attributed to efficient electron-hole pair separation. Furthermore, quenching effect of different scavengers indicated that hydroxyl radical had a main role, and e? or h+ played a minimal role in CV dye degradation. The enhanced properties due to doping make BaNixFe12-xO19 a potential candidate for photocatalytic applications under visible light irradiation.
机译:?2022 Elsevier Ltd 和 Techna Group S.r.l. 采用简单的微乳液方法制备了原始和掺杂 Ni 的 BaNixFe12-xO19 (x = 0.0, 0.2, 0.4, 0.6, 0.8, 1.0) NP,并基于介电、光学、结构和光催化性能探索了掺杂剂对 BaNixFe12-xO19 纳米颗粒的影响。X射线衍射和拉曼研究证实了空间群P63/mmc的规则六边形几何结构的形成,微晶尺寸在32-50 nm范围内。使用FTIR分析鉴定官能团。通过P-E环分析探究了剩磁(Pr)、饱和极化(Ps)和矫顽力(Hc),并随着掺杂剂浓度的增加而提高了Pr和Ps的值。根据PL光谱,高掺杂材料具有较高的电荷分离(e?- h+)和较低的复合速率,导致制备的纳米材料具有更高的光催化降解活性。发现光学带隙为1.78 eV,而未掺杂为2.60 eV(原始BaFe12O19为2.60 eV)。由于极化,介电损耗、介电常数和正切损耗值降低,而交流电导率增强。研究了掺杂和未掺杂样品在可见光右照射下对结晶紫染料的光催化性能。在可见光下暴露100分钟,高度掺杂的催化剂表现出97%的降解,而在原始情况下为60%,这归因于有效的电子-空穴对分离。此外,不同清除剂的猝灭作用表明羟基自由基起主要作用,e?或h+在CV染料降解中的作用很小。BaNixFe12-xO19 的掺杂性能增强,成为可见光照射下光催化应用的潜在候选者。

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