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具有超小孔径的超亲水疏油铜泡沫在压力下对水包油乳液进行高通量稳态破乳

High-Flux Steady-State Demulsification of Oil-In-Water Emulsions by Superhydrophilic-Oleophobic Copper Foams with Ultra-Small Pores Under Pressure.

作者信息

Chen Zehao, Wang Yunjia, Jin Xuekai, Zhang Yunpeng, Wen Xiufang, Zuo Jihao, Pi Pihui

机构信息

School of Chemistry and Chemical Engineering, Guangdong Provincial Key Lab of Green Chemical Product Technology, South China University of Technology, Guangzhou, 510640, P. R. China.

School of Chemistry and Chemical Engineering, Zhongkai University of Agriculture and Engineering, Guangzhou, 510225, P. R. China.

出版信息

Small. 2024 Dec;20(50):e2407798. doi: 10.1002/smll.202407798. Epub 2024 Sep 30.

Abstract

3D superwetting materials struggle to maintain high-flux steady-state demulsification for oil-in-water emulsions because the accumulated oil within the material is difficult to discharge rapidly. The water flow shear force can swiftly remove the oil from the anti-fouling surface. In this study, by introducing nanofibers and carbon nanotubes and chemical modification, a superhydrophilic-oleophobic copper foam with pores of several micrometers is prepared, which can achieve a continuous demulsification process with steady-state flux over 57000 L m h for oil-in-water emulsions and rapid hydraulic-driven oil release under an additional pressure of 5 kPa. Thanks to the ultra-small pores of the copper foam, the steady-state demulsification efficiency can be still maintained at over 97.5%. During the demulsification process, the accumulation of oil and surfactants within the copper foam can be maintained at low levels, achieving dynamic equilibrium. With the aid of second-stage superhydrophilic copper mesh, the demulsified oil-water mixtures can be rapidly separated. This high-flux, steady-state, and efficient demulsification process shows great potential for industrial applications.

摘要

3D超润湿材料难以维持水包油乳液的高通量稳态破乳,因为材料内部积累的油难以快速排出。水流剪切力可以迅速从防污表面去除油。在本研究中,通过引入纳米纤维和碳纳米管并进行化学改性,制备了一种具有几微米孔径的超亲水疏油泡沫铜,其可实现水包油乳液的连续破乳过程,稳态通量超过57000 L m⁻² h⁻¹,并在5 kPa的附加压力下实现快速水力驱动的油释放。由于泡沫铜的超小孔径,稳态破乳效率仍可保持在97.5%以上。在破乳过程中,泡沫铜内部油和表面活性剂的积累可维持在低水平,实现动态平衡。借助二级超亲水铜网,可快速分离破乳后的油水混合物。这种高通量、稳态且高效的破乳过程在工业应用中显示出巨大潜力。

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