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超声辅助快速制备超疏水不锈钢表面及其在油水分离中的应用。

Ultrasonic assisted rapid preparation of superhydrophobic stainless steel surface and its application in oil/water separation.

作者信息

Zhang Zongbo, Xu Chunling, Liu Wengang, Wang Kai, Rao Yunlong, Jiang Chen, Li Dawei, Zhang Yu, Jiang Xin, Chen Xintong, Xu Changbin

机构信息

College of Mechanical and Electrical Engineering, China University of Petroleum (East China), Qingdao 266580, PR China.

College of Mechanical and Electrical Engineering, China University of Petroleum (East China), Qingdao 266580, PR China.

出版信息

Ultrason Sonochem. 2021 Dec;81:105848. doi: 10.1016/j.ultsonch.2021.105848. Epub 2021 Nov 26.

Abstract

The preparation of superhydrophobic (SH) surface on stainless steel by chemical etching method is challenging due to the good corrosion resistance of the material. In this work, SH surface with water contact angle (WCA) as high as 163.21° was accomplished on 304 stainless steel surface by a rapid ultrasonic-assisted chemical etching method within 7 min and a low-cost fluorine-free modification treatment. The mechanism of ultrasonic field on the etching process was explored by detecting the cavitation and oscillation energy in the reactor. It is the first time to found that the ultrasonic cavitation effect enhanced the etching process by both chemical and physical facilitation resulting in hierarchical lamellar micro-structures, "mountain-like" micro-structure clusters and "coral-reef-like" nano-scale structures on the surface. With the ultrasonic power increasing, the ultrasonic cavitation effect not only enhanced the superhydrophobicity of sample surface, but also improved the uniformity of surface wettability. The samples also showed excellent performance of oil/water separation for various organics (all separation efficiencies up to 96%) and remarkable mechanical stability.

摘要

由于不锈钢材料具有良好的耐腐蚀性,采用化学蚀刻法在不锈钢表面制备超疏水(SH)表面具有挑战性。在本工作中,通过快速超声辅助化学蚀刻法在7分钟内并结合低成本的无氟改性处理,在304不锈钢表面实现了水接触角(WCA)高达163.21°的超疏水表面。通过检测反应器中的空化和振荡能量,探索了超声场对蚀刻过程的作用机制。首次发现超声空化效应通过化学和物理促进作用增强了蚀刻过程,从而在表面形成了分层的层状微结构、“山状”微结构簇和“珊瑚礁状”纳米级结构。随着超声功率的增加,超声空化效应不仅增强了样品表面的超疏水性,还提高了表面润湿性的均匀性。这些样品还表现出对各种有机物优异的油/水分离性能(所有分离效率高达96%)和显著的机械稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f128/8637139/aab2c8946fea/ga1.jpg

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