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3/Bi 25FeO 40) nanoparticles for remediation of dye-contaminated water: kinetics and comparison with artificial UV and visible light-mediated photocatalysis]]>

机译:<![cdata [使用混合相铋铁素体的太阳能光触发光催化(Bifeo <下标> 3 / bi <下标> 25 feo <下标> 40 )纳米粒子进行修复 染料污染水:动力学和人工紫外线和可见光介导的光催化的比较]]>

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Mixed-phase bismuth ferrite (BFO) nanoparticles were prepared by co-precipitation method using potassium hydroxide as the precipitant. X-ray diffractogram (XRD) of the particles showed the formation of mixed-phase BFO nanoparticles containing BiFeO~(3)/Bi~(25)FeO~(40)phases with the crystallite size of 70?nm. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) revealed the formation of quasi-spherical particles. The BFO nanoparticles were uniform sized with narrow size range and with the average hydrodynamic diameter of 76?nm. The band gap energy of 2.2?eV showed its ability to absorb light even in the visible range. Water contaminated with Acid Yellow (AY-17) and Reactive Blue (RB-19) dye was treated by photocatalysis under UV, visible, and solar light irradiation using the BFO nanoparticles. The BFO nanoparticles showed maximum photocatalytical activity under solar light as compared to UV and visible irradiations, and photocatalysis was favored under acidic pH. Complete degradation of AY-17 dyes and around 95% degradation of RB-19 could be achieved under solar light at pH 5. The kinetics of degradation followed the Langmuir–Hinshelhood kinetic model showing that the heterogeneous photocatalysis is adsorption controlled. The findings of this work prove the synthesized BFO nanoparticles as promising photocatalysts for the treatment of dye-contaminated industrial wastewater.
机译:通过使用氢氧化钾作为沉淀剂的共沉淀法制备混合相铋铁氧体(BFO)纳米颗粒。颗粒的X射线衍射图(XRD)显示含有BiFeO〜(3)/ Bi〜(25)的混合相BFO纳米颗粒的形成,所述微晶尺寸为70μm。扫描电子显微镜(SEM)和透射电子显微镜(TEM)显示了准球形颗粒的形成。 BFO纳米颗粒均匀,尺寸窄,尺寸范围窄,平均水动力直径为76Ω·Nm。带隙能量为2.2?EV表明它表明它即使在可见范围内也能吸收​​光。使用BFO纳米颗粒在UV,可见光和太阳光照射下通过光催化处理与酸黄(AY-17)和反应性蓝(RB-19)染料污染的水。与UV和可见光照射相比,BFO纳米颗粒在太阳光下显示出最大的光催化活性,并且在酸性pH下有利于光催化。在pH5的太阳光下,在太阳光下,在Slo-17下实现Ay-17染料的完全降解和RB-19的约95%降解。降解动力学跟随Langmuir-hinshelhoale动力学模型,表明非均相光催化是吸附的吸附。这项工作的发现证明了合成的BFO纳米颗粒作为用于治疗染料污染的工业废水的有前途的光催化剂。

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