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基于静电空气喷雾沉积的具有可切换粘附性的磁响应超疏水表面

Magnetically Responsive Superhydrophobic Surface with Switchable Adhesivity Based on Electrostatic Air Spray Deposition.

作者信息

Chen Fengjun, Xiang Wang, Yin Shaohui, Huang Shuai

机构信息

State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, Changsha 410082, P. R. China.

National Engineering Research Center for High Efficiency Grinding, Hunan University, Changsha 410082, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2021 May 5;13(17):20885-20896. doi: 10.1021/acsami.1c04003. Epub 2021 Apr 27.

Abstract

A new method was reported for preparing a magnetically responsive superhydrophobic surface by electrostatic air spray deposition (EASD) and magnetic induction. The mixture was fully atomized under the combined action of the electrostatic field and the high-speed airflow field, and a dense array of micropillars was formed. The atomization mechanism of EASD was explored. The distribution and physical parameters of the micropillars were evaluated and counted. Switchable adhesion characteristics of the surface and the reversibility in 10 cycles were examined. The influences of different electrostatic voltages, component concentration, spray distance, air pressure, and magnetic field intensity on the surface morphology and hydrophobicity were analyzed. The prepared surface can be reversibly transformed between the high-adhesion state (with a contact angle of 108°) and the low-adhesion state (with a contact angle of 154°) by on/off switching of an external magnetic field. After a 2.2 kPa pressure load was applied, the surface contact angle was 144° with an applied magnetic field of 0.4 T. After heated at 90 °C for more than 90 min, the surface can almost obtain superhydrophobicity (with a contact angle of 148°) in the absence of a magnetic field. By utilizing the switchable surface adhesion characteristics, various kinds of droplet transmissions were realized. When the cured surface was spray-coated with carbon nanoparticles (CNPs), active droplet manipulation can be achieved by simply moving the magnet. The advantages of this method include a simple preparation process without chemical surface modification.

摘要

报道了一种通过静电空气喷雾沉积(EASD)和磁感应制备磁响应超疏水表面的新方法。在静电场和高速气流场的共同作用下,混合物被充分雾化,形成了密集排列的微柱阵列。探讨了EASD的雾化机理。对微柱的分布和物理参数进行了评估和统计。研究了表面的可切换粘附特性以及10个循环中的可逆性。分析了不同静电电压、组分浓度、喷雾距离、气压和磁场强度对表面形貌和疏水性的影响。通过外部磁场的开/关切换,制备的表面可以在高粘附状态(接触角为108°)和低粘附状态(接触角为154°)之间可逆转变。施加2.2 kPa压力负载后,在0.4 T的外加磁场下表面接触角为144°。在90℃加热90分钟以上后,表面在无磁场时几乎可获得超疏水性(接触角为148°)。利用表面可切换的粘附特性,实现了各种液滴传输。当固化表面喷涂碳纳米颗粒(CNPs)时,通过简单移动磁铁即可实现活性液滴操纵。该方法的优点包括制备过程简单,无需化学表面改性。

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