Synthesis and evaluation of Fe-doped zinc oxide photocatalyst for methylene blue and congo red removal

Kingsly Tian Chee Cheah, Jing Yao Sum
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引用次数: 2

Abstract

Zinc oxide is one of the most common photocatalysts utilized for the photocatalytic degradation of synthetic dyes aside from titanium dioxide. However, the application of ZnO in the treatment of wastewater containing synthetic dyes is limited due to the high energy band gap which allows ZnO to be efficient upon irradiation with ultraviolet radiation only. This study aims to evaluate the photocatalytic degradation efficiency of the zinc oxide photocatalyst and its derivatives, specifically 0.25, 0.5, 2.5 and 5 mol% Fe(II)-doped ZnO, 0.25, 0.5, 2.5 and 5 mol% Fe(III)-doped ZnO and 2.5 mol% Fe(II)-Fe(III)-doped ZnO. The performance of the photocatalysts was evaluated based on the effect of solution pH, effect of photocatalyst loading and nature of dye. The synthesis of photocatalysts were done using sol-gel synthesis method, and photodegradation tests were carried out under visible light exposure for 60 minutes. The photocatalysts were characterized with SEM, FTIR, and UV-Vis spectroscopy. The optical characterization results show that 2.5 mol% Fe(II)-Fe(III)-doped ZnO has the lowest band gap energy of 3.401 eV which was estimated using Tauc’s plot. This further validated the degradation performance of the 2.5 mol% Fe(II)-Fe(III)-doped ZnO photocatalyst where it displayed the highest photocatalytic degradation efficiencies at all pH and photocatalyst loading. The highest degradation achieved using methylene blue was 94.21% and 32.97% using congo red as model solute at optimum pH and 300 mg/L photocatalyst loading. In overall, the present study has proven that Fe-doped photocatalysts have the potential for the degradation of various synthetic dyes upon irradiation with visible light.
掺杂铁氧化锌光催化剂的合成及对亚甲基蓝和刚果红脱除效果的评价
氧化锌是除二氧化钛外用于合成染料光催化降解最常用的光催化剂之一。然而,ZnO在含合成染料废水处理中的应用受到限制,因为ZnO具有高能量带隙,只能在紫外线照射下有效。本研究旨在评价氧化锌光催化剂及其衍生物的光催化降解效率,特别是0.25、0.5、2.5和5mol % Fe(II)掺杂ZnO, 0.25、0.5、2.5和5mol % Fe(III)掺杂ZnO和2.5 mol% Fe(II)-Fe(III)掺杂ZnO。从溶液pH、光催化剂负载的影响和染料性质等方面评价了光催化剂的性能。采用溶胶-凝胶法合成光催化剂,并在可见光下照射60分钟进行光降解试验。采用扫描电镜(SEM)、红外光谱(FTIR)和紫外可见光谱(UV-Vis)对催化剂进行了表征。光学表征结果表明,2.5 mol% Fe(II)-Fe(III)掺杂ZnO的能带能最低,为3.401 eV。这进一步验证了2.5 mol% Fe(II)-Fe(III)掺杂ZnO光催化剂的降解性能,它在所有pH和光催化剂负载下都表现出最高的光催化降解效率。以刚果红为模型溶质,在最佳pH和负载300 mg/L光催化剂的条件下,亚甲基蓝的最高降解率为94.21%和32.97%。总的来说,本研究证明了掺铁光催化剂在可见光照射下具有降解各种合成染料的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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