杜立群

个人信息Personal Information

教授

博士生导师

硕士生导师

性别:女

毕业院校:东北大学

学位:博士

所在单位:机械工程学院

学科:机械制造及其自动化. 微机电工程. 机械电子工程

办公地点:西部校区机械学院新大楼6009房间

电子邮箱:duliqun@dlut.edu.cn

扫描关注

论文成果

当前位置: 中文主页 >> 科学研究 >> 论文成果

Effects of ultrasonic agitation on adhesion strength of micro electroforming Ni layer on Cu substrate

点击次数:

论文类型:期刊论文

发表时间:2021-02-01

发表刊物:ULTRASONICS SONOCHEMISTRY

卷号:29

页面范围:1-10

ISSN号:1350-4177

关键字:MEMS; Micro electroforming; Ultrasonic agitation; Adhesion strength; Compressive stress; Polarization

摘要:Micro electroforming is an important technology, which is widely used for fabricating micro metal devices in MEMS. The micro metal devices have the problem of poor adhesion strength, which has dramatically influenced the dimensional accuracy of the devices and seriously limited the development of the micro electroforming technology. In order to improve the adhesion strength, ultrasonic agitation method is applied, during the micro electroforming process in this paper. To explore the effect of the ultrasonic agitation, micro electroforming experiments were carried out under ultrasonic and ultrasonic-free conditions. The effects of the ultrasonic agitation on the micro electroforming process were investigated by polarization and alternating current (a.c.) impedance methods. The real surface area of the electroforming layer was measured by cyclic voltammetry method. The compressive stress and the crystallite size of the electroforming layer were measured by X-ray Diffraction (XRD) method. The adhesion strength of the electroforming layer was measured by scratch test. The experimental results show that the imposition of the ultrasonic agitation decreases the polarization overpotential and increases the charge transfer process at the electrode-electrolyte interface during the electroforming process. The ultrasonic agitation increases the crystallite size and the real surface area, and reduces the compressive stress. Then the adhesion strength is improved about 47% by the ultrasonic agitation in average. In addition, mechanisms of the ultrasonic agitation improving the adhesion strength are originally explored in this paper. The mechanisms are that the ultrasonic agitation increases the crystallite size, which reduces the compressive stress. The lower the compressive stress is, the larger the adhesion strength is. Furthermore, the ultrasonic agitation increases the real surface area, enhances the mechanical interlocking strength and consequently increases the adhesion strength. This work contributes to fabricating the electroforming layer with large adhesion strength. (C) 2015 Elsevier B.V. All rights reserved.