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水鳖科果皮衍生的铋氧金属修饰生物炭去除废水中刚果红:吸附行为和机理。

Bismuth oxymetallate-modified biochar derived from Euryale ferox husk for efficient removal of Congo red from wastewater: adsorption behavior and mechanisms.

机构信息

College of Environmental and Municipal Engineering, Shaanxi Key Laboratory of Environmental Engineering, Key Lab of Northwest Water Resource, Environment and Ecology, MOE, Xi'an University of Architecture and Technology, Xi'an, 710055, People's Republic of China.

Xi'an University of Technology, Xi'an, 710048, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2024 Apr;31(20):29497-29512. doi: 10.1007/s11356-024-33106-2. Epub 2024 Apr 5.

Abstract

Using Euryale ferox husk as raw material, pristine biochar (EBC), BiMoO-modified biochar (BM-EBC), and BiFeO-modified biochar (BF-EBC) were prepared and employed for decontaminating Congo red (CR) from wastewater. Compared with EBC (217.59 mg/g) and BF-EBC (359.49 mg/g), a superior adsorption capacity of 460.77 mg/g was achieved by BM-EBC. Based on the evaluation results of the Freundlich and pseudo-second-order models, multilayer chemisorption was suggested as the adsorption mechanism. The adsorption process of BM-EBC was spontaneous and endothermic, and the rate-limiting step pertained to liquid film diffusion and intraparticle diffusion. The underlying removal mechanism was explored via SEM, BET, FTIR, XPS, Raman spectra, and Zeta potential analyses. The introduction of bismuth oxymetallates with their high number of M-O (M: Bi, Mo, Fe) structural elements provided the adsorbent with enlarged surface areas and reinforced oxygen functional groups, thereby promoting pore filling, π-π interactions, hydrogen bonding, and complexation, leading to enhanced adsorption capacity. These results demonstrate that Euryale ferox husk biochar modified by bismuth oxymetallates has high prospects for valorizing biomass waste and removing CR from wastewater.

摘要

以芡实壳为原料,制备了原始生物炭(EBC)、BiMoO 改性生物炭(BM-EBC)和 BiFeO 改性生物炭(BF-EBC),并将其用于从废水中去除刚果红(CR)。与 EBC(217.59mg/g)和 BF-EBC(359.49mg/g)相比,BM-EBC 表现出优异的吸附能力,达到 460.77mg/g。基于 Freundlich 和拟二级模型的评估结果,建议多层化学吸附是吸附机制。BM-EBC 的吸附过程是自发和吸热的,速率限制步骤与液膜扩散和颗粒内扩散有关。通过 SEM、BET、FTIR、XPS、拉曼光谱和 Zeta 电位分析探讨了潜在的去除机制。引入具有大量 M-O(M:Bi、Mo、Fe)结构元素的钼氧铋金属化合物,为吸附剂提供了更大的表面积和增强的含氧官能团,从而促进了孔填充、π-π相互作用、氢键和络合,从而提高了吸附能力。这些结果表明,BiMoO 改性芡实壳生物炭具有很高的利用生物质废物和从废水中去除 CR 的前景。

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