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初始间隙、电压和添加剂对局部电化学沉积锌微柱形态的影响

Influence of Initial Gap, Voltage, and Additives on Zinc Microcolumn Morphology by Local Electrochemical Deposition.

作者信息

Liu Yi, Wang Fuliang

机构信息

State Key Laboratory of High Performance Complex Manufacturing, Changsha 410083, China.

School of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China.

出版信息

Sensors (Basel). 2025 Jan 17;25(2):521. doi: 10.3390/s25020521.

Abstract

Local electrochemical deposition (LECD) is an innovative additive manufacturing technology capable of achieving precise deposition of metallic microstructures. This study delves into the ramifications of pivotal operational parameters-namely, the initial electrode gap, deposition voltage, and additive concentration-on the morphology of zinc microcolumns fabricated through LECD. A holistic approach integrating experimental methodologies with finite element simulations was adopted to scrutinize the influence of these variables on the microcolumns' dimensions, surface morphology, and structural integrity. The findings reveal that augmenting the initial electrode gap results in microcolumns with larger diameters. Conversely, the deposition voltage primarily modulates the formation rate without exerting a notable impact on the columns' dimensional attributes. The incorporation of additives enhances surface smoothness and diminishes column diameters; however, an overabundance of additives adversely affects the overall microstructure. Optimal parameters for the production of high-quality zinc microcolumns were determined to be a deposition voltage of 3.4 V and an electrode gap of 10 μm. These discoveries contribute pivotal insights for the refinement of LECD processes, with particular relevance to biomedical applications, such as the development of zinc-based bioabsorbable materials for orthopedic implants and cardiovascular devices.

摘要

局部电化学沉积(LECD)是一种创新的增材制造技术,能够实现金属微结构的精确沉积。本研究深入探讨了关键操作参数——即初始电极间隙、沉积电压和添加剂浓度——对通过LECD制造的锌微柱形态的影响。采用了一种将实验方法与有限元模拟相结合的整体方法,以研究这些变量对微柱尺寸、表面形态和结构完整性的影响。研究结果表明,增大初始电极间隙会导致微柱直径更大。相反,沉积电压主要调节形成速率,而对柱的尺寸属性没有显著影响。添加剂的加入提高了表面光滑度并减小了柱直径;然而,添加剂过量会对整体微观结构产生不利影响。确定生产高质量锌微柱的最佳参数为沉积电压3.4 V和电极间隙10μm。这些发现为LECD工艺的改进提供了关键见解,尤其与生物医学应用相关,例如用于骨科植入物和心血管装置的锌基生物可吸收材料的开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/35dc/11769403/4127304b8608/sensors-25-00521-g001.jpg

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