Laboratory of Applied Physical Chemistry, Faculty of Sciences Ibn Zohr University, BP 8106 Dakhla, 80060, Agadir, Morocco.
Laboratory of Applied Physical Chemistry, Faculty of Sciences Ibn Zohr University, BP 8106 Dakhla, 80060, Agadir, Morocco.
Environ Res. 2024 Dec 15;263(Pt 3):120218. doi: 10.1016/j.envres.2024.120218. Epub 2024 Oct 22.
In this study, a type-I heterojunction was synthesized based on eggshell waste doped mixed metal oxide (ES@ZnAl MMO) for the degradation of RhB dye under visible light irradiation. The ES@ZnAl MMO core-shell was synthesized using waste eggshell and layered double hydroxide (LDH) as primary precursors. After their mechanochemical assembly and thermal treatment, CaCO was formed in both calcite and vaterite forms, alongside mixed metal oxides derived from the LDH (ZnO and AlO). The formation of a heterojunction between the semiconductors results in an improved activation of sites, a decrease in bandgap energy from 5.72 to 3.44 eV, and an increase in degradation capacity. The elemental composition, morphology, structural, and optical properties of the ES@ZnAl MMO nanocomposite were analyzed using various techniques. The optimal ES@ZnAl MMO photocatalyst demonstrated superior performance, reaching over 98% of RhB dye degradation under optimal conditions, outperforming pure ZnAl LDH, ZnAl MMO, and ES. After five run cycles, the ES@ZnAl MMO heterojunction still maintained a high photocatalytic performance for RhB dye (99%). Furthermore, it displayed high performance in degrading various other pollutants, including OG, IC, MB, and 2.4-DP, with degradation efficiencies of 97%, 99%, 99%, and 87%, respectively. This economically advantageous heterojunction showed its importance in environmental remediation, presenting a promising solution for addressing diverse pollution challenges.
在这项研究中,基于蛋壳废物掺杂混合金属氧化物(ES@ZnAlMMO)合成了 I 型异质结,用于在可见光照射下降解 RhB 染料。ES@ZnAlMMO 核壳是使用废蛋壳和层状双氢氧化物(LDH)作为主要前体合成的。在机械化学组装和热处理后,CaCO 以方解石和文石两种形式形成,同时还从 LDH(ZnO 和 AlO)衍生出混合金属氧化物。半导体之间形成异质结会导致活性位点得到改善,带隙能量从 5.72 降至 3.44 eV,并提高降解能力。采用各种技术对 ES@ZnAlMMO 纳米复合材料的元素组成、形貌、结构和光学性能进行了分析。最佳的 ES@ZnAlMMO 光催化剂表现出优异的性能,在最佳条件下,RhB 染料的降解率超过 98%,优于纯 ZnAl LDH、ZnAl MMO 和 ES。经过五次运行循环后,ES@ZnAlMMO 异质结仍保持对 RhB 染料(99%)的高光催化性能。此外,它还表现出对各种其他污染物(包括 OG、IC、MB 和 2.4-DP)的高降解效率,分别为 97%、99%、99%和 87%。这种经济优势的异质结在环境修复中显示出其重要性,为解决各种污染挑战提供了有前途的解决方案。