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首页> 外文期刊>International journal of green energy >Visible light photocatalytic activity of Mn-doped BiFeO_3 nanoparticles
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Visible light photocatalytic activity of Mn-doped BiFeO_3 nanoparticles

机译:Mn掺杂BiFeO_3纳米粒子的可见光催化活性

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The discharges of effluents from the Textile industries contain bleaching and dyeing chemicals which are very harmful to the environment. Thus, managing textile effluents to make zero discharge of the above chemicals using renewable energy is the need of the hour. Here we report photocatalytic degradation of Acid Red-85, textile dye in visible light by energy bandgap optimized magnetic nanoparticles. The BiFe1-xMnxO3 (x = 0, 0.025, 0.05, 0.075 & 0.1) nanoparticles were synthesized by citrate gel auto-ignition method. The synthesized compounds show well-defined crystalline particles with decrease of crystallite size from 57 to 20 nm with increase of Mn2+ concentration. All samples show well-separated particle morphology with decrease of average particle size with increase of manganese concentration. Optical absorption studies reveal that the energy band-gap of sample decreases from 2.2 to 1.97 eV with increase of Mn ions in BiFeO3 lattice. The coercive field (H-c) and remnant magnetization (M-r) enhance up to 5% of manganese content and then reduces with further increase of dopant concentration due to hindrance of magnetic exchange in Mn-O-Fe network. Manganese doping helps in increasing the degradation efficiency of BiFeO3 nanoparticles and the rate constant (K) increases from 2.6 x 10(-2) to 6.84 x 10(-2) min(-1)respectively. It is attributed to long charge separation time in doped samples which is confirmed by photoluminescence spectrum. Mn-doped BiFeO3 has an edge over the widely studied TiO2 and ZnO because of its absorbance in visible light spectrum and its ability to be magnetically removed after treatment.
机译:纺织工业的废水中含有对环境非常有害的漂白和染色化学品。因此,管理纺织废水以使用可再生能源使上述化学品零排放是一个小时的需要。在这里,我们报告了能带隙优化的磁性纳米粒子在可见光中对酸性红85纺织染料的光催化降解。通过柠檬酸盐凝胶自燃法合成了BiFe1-xMnxO3(x = 0,0.025,0.05,0.075&0.1)纳米粒子。合成的化合物显示出明确的结晶颗粒,随着Mn2 +浓度的增加,晶粒尺寸从57 nm减小到20 nm。所有样品均表现出良好的颗粒形态,其平均粒径随锰浓度的增加而降低。光吸收研究表明,随着BiFeO3晶格中Mn离子的增加,样品的能带隙从2.2降至1.97 eV。矫顽场(H-c)和残余磁化强度(M-r)最多可提高锰含量的5%,然后由于Mn-O-Fe网络中磁交换的阻碍而随着掺杂剂浓度的进一步增加而降低。锰掺杂有助于提高BiFeO3纳米颗粒的降解效率,速率常数(K)分别从2.6 x 10(-2)增加到6.84 x 10(-2)min(-1)。这归因于掺杂样品中的长电荷分离时间,这通过光致发光光谱证实。 Mn掺杂的BiFeO3相对于广泛研究的TiO2和ZnO具有优势,因为它在可见光谱中具有吸收性,并且在处理后能够被磁性去除。

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