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固定化微生物羟乙基纤维素/丝瓜络复合海绵对废水中油的选择性吸附与生物降解。

Microorganisms immobilized hydroxyethyl cellulose/luffa composite sponge for selective adsorption and biodegradation of oils in wastewater.

机构信息

College of Chemical Engineering, Northwest Minzu University, Key Laboratory of State Ethnic Affairs Commission, Northwest Xincun 1, Lanzhou 730030, PR China.

College of Chemical Engineering, Northwest Minzu University, Key Laboratory of State Ethnic Affairs Commission, Northwest Xincun 1, Lanzhou 730030, PR China.

出版信息

Int J Biol Macromol. 2024 Oct;277(Pt 1):133477. doi: 10.1016/j.ijbiomac.2024.133477. Epub 2024 Jun 26.

Abstract

The highly efficient removal of oils such as oils or dyes from wastewater has aroused wide concern and is of great significance for clean production and environmental remediation. The synthesis of a novel aerogel (designated as HEC/LS) is reported herein, achieved through a sol-gel method followed by freeze-drying utilizing loofa and hydroxyethyl cellulose as the raw materials. The new HEC/LS aerogel exhibits excellent porosity and specific surface area, with a porosity of 88.70 %, a total pore area of 0.607 m g, and a specific surface area of 230 m g. The prepared HEC/LS aerogel exhibits exceptional hydrophilicity and self-floatability, facilitating its rapid absorption of water up to 21 times its own weight within a mere 3 s. Additionally, it demonstrates good adsorption performance for methylene blue (MB), with a maximum adsorption capacity of 83.30 mg g. Subsequently, a new hydrophobic microorganisms-loaded composite aerogel (namely, Bn-HEC/LS) was obtained by doping microorganisms into the as-prepared HEC/LS in multiple enrichment followed by a hydrophobic and oleophilic surface modification. Based on its rich porous structure and oleophilic wettability, the as-synthesized Bn-HEC/LS exhibits excellent selective adsorption and degradation properties for the oil contamination, the diesel oil could be selectively absorbed in the Bn-HEC/LS and degraded by the loaded microorganisms. Among them, B-HEC/LS displays the highest removal efficiency of 94.50 % within 180 h, while free microorganisms and HEC/LS aerogels show degradation efficiencies of only 21.70 % and 48.10 %, respectively. The fixation of microorganisms in the aerogel increases their number within the material and enhances the relative microorganisms removal capacity. The hydrophobic and lipophilic modifications improve the selective adsorption performance of the aerogel on diesel oil, resulting in a significantly high removal rate of Bn-HEC/LS for diesel oil. The results indicate that the immobilization of microorganisms into aerogel improves the activity of microorganisms, and the hydrophobic and oleophilic modification enhances the selective adsorption performance of aerogel to diesel oil, thus resulting in a very high removal rate of Bn-HEC/LS for diesel oil. This study is expected to provide a now possibility for the green and efficient bioremediation of oils.

摘要

高效去除废水中的油类物质,如油脂或染料,已引起广泛关注,对于清洁生产和环境修复具有重要意义。本文报道了一种新型气凝胶(命名为 HEC/LS)的合成,该气凝胶通过溶胶-凝胶法制备,然后利用丝瓜络和羟乙基纤维素作为原料通过冷冻干燥法制备。新型 HEC/LS 气凝胶具有优异的孔隙率和比表面积,孔隙率为 88.70%,总孔面积为 0.607 m²/g,比表面积为 230 m²/g。所制备的 HEC/LS 气凝胶具有极好的亲水性和自浮性,可在 3 秒内迅速吸收自身重量 21 倍的水。此外,它对亚甲基蓝(MB)具有良好的吸附性能,最大吸附容量为 83.30 mg/g。随后,通过将微生物多次富集后掺杂到所制备的 HEC/LS 中,并进行疏油和亲油表面改性,得到一种新型的负载疏水性微生物的复合气凝胶(即 Bn-HEC/LS)。基于其丰富的多孔结构和疏油性润湿性,所合成的 Bn-HEC/LS 对油污染具有优异的选择性吸附和降解性能,柴油可以在 Bn-HEC/LS 中被选择性吸收,并被负载的微生物降解。其中,Bn-HEC/LS 在 180 小时内的去除效率最高,达到 94.50%,而游离微生物和 HEC/LS 气凝胶的降解效率分别仅为 21.70%和 48.10%。微生物在气凝胶中的固定增加了其在材料中的数量,并提高了相对微生物去除能力。疏油和亲油改性提高了气凝胶对柴油的选择性吸附性能,从而使 Bn-HEC/LS 对柴油的去除率显著提高。结果表明,微生物固定化到气凝胶中提高了微生物的活性,疏油和亲油改性提高了气凝胶对柴油的选择性吸附性能,从而使 Bn-HEC/LS 对柴油的去除率非常高。本研究有望为油类的绿色高效生物修复提供新的可能性。

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