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低场梯度下磁性Pickering乳液的磁泳:宏观与微观运动

Magnetophoresis of Magnetic Pickering Emulsions Under Low Field Gradient: Macroscopic and Microscopic Motion.

作者信息

Tham Foo Kean, Ng Wei Ming, Leong Sim Siong, Yeap Swee Pin, Low Siew Chun, Lee Hooi Ling, Lim JitKang

机构信息

School of Chemical Engineering, Universiti Sains Malaysia, Nibong Tebal 14300, Penang, Malaysia.

Department of PetroChemical Engineering, Faculty of Engineering and Green Technology, Universiti Tunku Abdul Rahman, Kampar 31900, Perak, Malaysia.

出版信息

Langmuir. 2021 Feb 9;37(5):1811-1822. doi: 10.1021/acs.langmuir.0c03153. Epub 2021 Jan 26.

Abstract

Monodispersed iron oxide nanoparticles (IONPs) coated with polystyrenesulfonate (PSS) and cetrimonium bromide (CTAB) have been used to stabilize magnetic Pickering emulsions (MPEs). Magnetophoresis of MPEs under the influence of a low gradient magnetic field (∇ < 100 T/m) was investigated at the macroscopic and microscopic scale. At the macroscopic scale, for the case of pH 7, the MPE achieved a magnetophoretic velocity of 70.9 μm/s under the influence of ∇ at 93.8 T/m. The magnetic separation efficiency of the MPE at 90% was achieved within 30 min for pH 3, 7, and 10. At pH 10, the colloidal stability of the MPE was the lowest compared to that for pH 3 and 7. Thus, MPE at pH 10 required the shortest time for achieving the highest separation efficiency, as the MPE experienced cooperative magnetophoresis at alkaline pH. The creaming rate of the MPE at all conditions was still lower compared to magnetophoresis and was negligible in influencing its separation kinetics profiles. At the microscopic scale, the migration pathways of the MPEs (with diameters between 2.5 and 7.5 μm) undergoing magnetophoresis at ∇ ∼ 13.0 T/m were recorded by an optical microscope. From these experiments, and taking into consideration the MPE size distribution from the dynamic light scattering (DLS) measurement, we determined the averaged microscopic magnetophoretic velocity to be 7.8 ± 5.5 μm/s. By making noncooperative magnetophoresis assumptions (with negligible interactions between the MPEs along their migration pathways), the calculated velocity of individual MPEs was 9.8 μm/s. Such a value was within the percentage error of the experimental result of 7.8 ± 5.5 μm/s. This finding allows for an easy and quick estimation of the magnetophoretic velocity of MPEs at the microscale by using macroscopic separation kinetics data.

摘要

涂覆有聚苯乙烯磺酸盐(PSS)和十六烷基三甲基溴化铵(CTAB)的单分散氧化铁纳米颗粒(IONP)已被用于稳定磁性Pickering乳液(MPE)。在宏观和微观尺度上研究了低梯度磁场(∇<100 T/m)影响下MPE的磁泳。在宏观尺度上,对于pH值为7的情况,MPE在93.8 T/m的∇影响下实现了70.9μm/s的磁泳速度。对于pH值为3、7和10的情况,MPE在30分钟内实现了90%的磁分离效率。在pH值为10时,MPE的胶体稳定性与pH值为3和7时相比最低。因此,pH值为10的MPE实现最高分离效率所需的时间最短,因为MPE在碱性pH下经历协同磁泳。在所有条件下,MPE的乳析速率仍低于磁泳速率,对其分离动力学曲线的影响可忽略不计。在微观尺度上,通过光学显微镜记录了直径在2.5至7.5μm之间的MPE在∇~13.0 T/m下进行磁泳的迁移路径。通过这些实验,并考虑到动态光散射(DLS)测量得到的MPE尺寸分布,我们确定平均微观磁泳速度为7.8±5.5μm/s。通过做出非协同磁泳假设(MPE在其迁移路径上的相互作用可忽略不计),计算出单个MPE的速度为9.8μm/s。该值在7.8±5.5μm/s实验结果的百分比误差范围内。这一发现使得通过使用宏观分离动力学数据能够轻松快速地估计微观尺度下MPE的磁泳速度。

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