Hybrid materials for wastewater treatment: synergistic coupling of Neochloris oleoabundans and TiO2 nanoparticles†

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Ilaria Zanoni, Sara Amadori, Andrea Brigliadori, Anna Luisa Costa, Simona Ortelli, Pierluigi Giacò, Costanza Baldisserotto, Simonetta Pancaldi and Magda Blosi
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Abstract

In this work, we combined microalgae's sorptive properties with titania-based nanoparticles' photocatalytic capabilities to develop technologies applicable to wastewater treatment while also providing valuable insights into the innovation of adsorption technologies. The coupling of Neochloris oleoabundans biomass with an inorganic nanophase enables the formation of hybrid materials integrating heavy metal adsorption with photocatalytic action. To prepare the samples, we employed a water-based colloidal method followed by a spray freeze granulation treatment. The preparation process was followed by comprehensive physicochemical characterization from the wet precursors to the final hybrid granules. Key performance indicators, including adsorption and photocatalytic activity, were assessed using two model contaminants: copper ions (for heavy metal adsorption) and Rhodamine B (for photocatalysis). The results revealed a synergistic effect of the hybrid nanomaterials, significantly enhancing the Cu2+ adsorption capacity of the biomass, which increases from 30 mg g−1 to 250 mg g−1 when coupled with the inorganic phase and is likely due to the supporting and dispersing role of the inorganic nanoparticles on the biomass. The adsorption experimental values followed the Freundlich isothermal model and pseudo-second-order kinetic model, indicating that the adsorption occurred primarily through a multimolecular layer adsorption process, consistent with chemisorption mechanisms. The photocatalytic performance of the inorganic counterpart was preserved when coupled with the microalgae, with TiO2–SiO2/biomass achieving complete Rhodamine B degradation within 1 hour.

Abstract Image

废水处理用杂化材料:富油新绿藻与TiO2纳米粒子的协同偶联。
在这项工作中,我们将微藻的吸附特性与二氧化钛纳米颗粒的光催化能力结合起来,开发出适用于废水处理的技术,同时也为吸附技术的创新提供了有价值的见解。新绿藻油丰生物量与无机纳米相的耦合可以形成集重金属吸附和光催化作用于一体的杂化材料。为了制备样品,我们采用了水基胶体法,然后进行喷雾冷冻造粒处理。从湿前驱体到最终的杂交颗粒,对制备过程进行了全面的物理化学表征。关键性能指标,包括吸附和光催化活性,使用两种模型污染物进行评估:铜离子(重金属吸附)和罗丹明B(光催化)。结果表明,混合纳米材料具有协同作用,显著提高了生物质对Cu2+的吸附能力,与无机相耦合时,吸附量从30 mg g-1增加到250 mg g-1,这可能是由于无机纳米颗粒对生物质的支撑和分散作用所致。吸附实验值符合Freundlich等温模型和拟二级动力学模型,表明吸附主要通过多分子层吸附过程进行,符合化学吸附机理。当与微藻结合时,保持了无机对应物的光催化性能,TiO2-SiO2/生物质在1小时内完全降解罗丹明B。
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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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