用于去除污染废水中硫黑染料的生物工程纳米氧化锌:比较优化、模拟建模和等温线。

IF 4.2 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Bioengineered Pub Date : 2024-12-01 Epub Date: 2024-03-11 DOI:10.1080/21655979.2024.2325721
Sangita Yadav, Subhash Chander, Asha Gupta, Navish Kataria, Kuan Shiong Khoo
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引用次数: 0

摘要

这项研究工作的目的是分离和培养副黏液芽孢杆菌(Bacillus paramycoides),用于生物制造氧化锌纳米粒子,特别是氧化锌和氧化锌-ME 纳米粒子(仅由细菌提取物制造的纳米粒子--氧化锌,以及由包括提取物在内的细菌细胞团制造的纳米粒子--氧化锌-ME)。扫描电镜研究显示,ZnO 和 ZnO-ME 纳米粒子的尺寸分别为 22.33 纳米和 39 纳米。Brunauer、Emmett 和 Teller(BET)研究表明,ZnO 和 ZnO-ME 具有介孔结构,孔径分别为 13.839 和 13.88 nm,表面积分别为 7.617 和 33.635 m2/gm。利用普拉克特-伯曼设计(PBD)、全因子设计(FFD)和中央复合设计(CCD)筛选并优化了 ZnO 和 ZnO-ME 吸附硫化黑染料的各种参数。优化建模研究的结果表明,在所有研究模型中,FFD 得出的结果最具可预测性,拟合度最高,ZnO 的 R2 值为 0.998,ZnO-ME 的 R2 值为 0.993。值得注意的是,ZnO-ME 的染料去除率比 ZnO 高 80%,即 71%,这可能是由于 ZnO-ME 表面存在无定形碳。在各种等温模型中,Freundlich 模型与染料去除数据的相关性最强,证实了染料在两种纳米粒子上的多层吸附和支持性物理吸附。因此,氧化锌和氧化锌-ME 纳米粒子已被证明是减轻含染料废水对环境影响的潜在工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biogenic engineered zinc oxide nanoparticle for sulfur black dye removal from contaminated wastewater: comparative optimization, simulation modeling, and isotherms.

This research work aimed to isolate and culture the bacterium Bacillus paramycoides for biogenic fabrication of zinc oxide nanoparticles, specifically ZnO and ZnO-ME nanoparticles (nanoparticles fabricated from bacterial extracts only - ZnO, and from bacterial cell mass including extract - ZnO-ME). SEM investigation revealed the spherical-shaped NPs with 22.33 and 39 nm in size for ZnO and ZnO-ME, respectively. The Brunauer, Emmett, and Teller (BET) studies revealed mesoporous structure with pore diameters of 13.839 and 13.88 nm and surface area of 7.617 and 33.635 m2/gm for ZnO and ZnO-ME, respectively. Various parameters for the adsorption of sulfur black dye onto both ZnO and ZnO-ME were screened and optimized using Plackett-Burman Design (PBD), Full Factorial Design (FFD) and Central Composite Design (CCD). The results of the optimization modeling study revealed that FFD yielded the most predictable and best-fitting results among all the models studied, with R2 values of 0.998 for ZnO and 0.993 for ZnO-ME. Notably, ZnO-ME exhibited a greater dye removal efficiency 80% than ZnO i.e., 71%, it may be due to the presence of amorphous carbon on the surface of ZnO-ME. Among the various isothermal models, the Freundlich model displayed the strongest correlation with the dye removal data, confirming the multilayer adsorption of dye on both nanoparticles and supporting physisorption. Therefore, ZnO and ZnO-ME nanoparticles have been proven as potential tools for mitigating environmental impacts associated with dye-containing wastewater.

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来源期刊
Bioengineered
Bioengineered BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
8.20
自引率
28.60%
发文量
1114
审稿时长
17 weeks
期刊介绍: Bioengineered provides a platform for publishing high quality research on any aspect of genetic engineering which involves the generation of recombinant strains (both prokaryote and eukaryote) for beneficial applications in food, medicine, industry, environment and bio-defense.
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