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CTAB 和 SDS 功能化 FeO 磁性纳米粒子在油水纳米乳液中用于油分离的应用。

Application of Functionalized FeO Magnetic Nanoparticles Using CTAB and SDS for Oil Separation from Oil-in-Water Nanoemulsions.

机构信息

Department of Process Engineering, Memorial University, St. John's A1B 3X9, Newfoundland, Canada.

Department of Separation Science, Lappeenranta-Lahti University of Technology, Lappeenranta 53850, Finland.

出版信息

Langmuir. 2023 Jun 13;39(23):7995-8007. doi: 10.1021/acs.langmuir.2c03266. Epub 2023 May 31.

DOI:10.1021/acs.langmuir.2c03266
PMID:37256995
Abstract

Using magnetic nanoparticles (MNPs) for emulsified oil separation from wastewater is becoming increasingly widespread. This study aims to synthesize MNPs using amphiphilic coatings to stabilize the MNPs and prevent their agglomeration for efficiently breaking oil-in-water nanoemulsions. We coat two different sizes of FeO nanoparticles (15-20 and 50-100 nm) using cetyltrimethylammonium bromide (CTAB) and sodium dodecyl sulfate (SDS) with surfactant-to-MNP mass ratios of 0.4 and 0.8. We study the effect of various variables on the demulsification performance, including the MNP size and concentration, coating materials, and MNP loading. Based on the oil-water separation analysis, the smaller size MNPs (MNP-S) show a better demulsification performance than the larger ones (MNP-L ) for a 1000 ppm dodecane-in-water emulsion containing nanosized oil droplets (250-300 nm). For smaller MNPs (MNP-S) and at low dosage level of 0.5 g/L, functionalizing with surfactant-to-MNP mass ratio of 0.4, the functionalization increases the separation efficiency (SE) from 57.5% for bare MNP-S to 86.1% and 99.8 for the SDS and CTAB coatings, respectively. The highest SE for MNP-S@CTAB and the zeta potential measurements imply that electrostatic attraction between negatively charged oil droplets (-55.9 ± 2.44 mV) and positively charged MNP-S@CTAB (+35.8 ± 0.34 mV) is the major contributor to a high SE. Furthermore, the reusability tests for MNP-S@CTAB reveal that after 10 cycles, the amount of oil adsorption capacity decreases slightly, from 20 to 19 mg/g, indicating an excellent stability of synthesized nanoparticles. In conclusion, functionalized MNPs with tailored functional groups feature a high oil SE that could be effectively used for oil separation from emulsified oily wastewater streams.

摘要

使用磁性纳米粒子 (MNPs) 从废水中分离乳化油的方法越来越普遍。本研究旨在通过使用两亲性涂层合成 MNPs 来稳定 MNPs 并防止其聚集,以有效地破乳水中纳米乳液。我们使用十六烷基三甲基溴化铵 (CTAB) 和十二烷基硫酸钠 (SDS) 对两种不同尺寸的 FeO 纳米粒子 (15-20 和 50-100nm) 进行涂层,表面活性剂与 MNPs 的质量比为 0.4 和 0.8。我们研究了各种变量对破乳性能的影响,包括 MNPs 的尺寸和浓度、涂层材料和 MNPs 的负载量。基于油水分离分析,对于含有纳米尺寸油滴 (250-300nm) 的 1000ppm 正十二烷-水乳液,较小尺寸的 MNPs (MNP-S) 比较大尺寸的 MNPs (MNP-L) 表现出更好的破乳性能。对于较小的 MNPs (MNP-S),在低剂量水平为 0.5g/L 时,表面活性剂与 MNPs 的质量比为 0.4,功能化分别将分离效率 (SE) 从裸 MNPs-S 的 57.5%提高到 86.1%和 99.8%,对于 SDS 和 CTAB 涂层。MNP-S@CTAB 的最高 SE 和 Zeta 电位测量表明,带负电的油滴 (-55.9 ± 2.44mV) 和带正电的 MNP-S@CTAB (+35.8 ± 0.34mV) 之间的静电吸引是 SE 高的主要原因。此外,MNP-S@CTAB 的可重复使用性测试表明,经过 10 次循环后,吸附油的量略有下降,从 20 毫克/克下降到 19 毫克/克,表明合成纳米粒子具有极好的稳定性。总之,具有定制官能团的功能化 MNPs 具有高的油 SE,可有效用于从乳化含油废水中分离油。

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