Direction-dependent magnetic control of nickel microelectroforming: Deposition uniformity, residual stress and micropillar mold fabrication

Thickness gradients, residual stress and texture-related changes jointly constrain the dimensional reliability of nickel microelectroforming. This study examined how low-intensity magnetic-field magnitude and direction affect thickness uniformity, surface appearance, X-ray diffraction response and residual stress during nickel microelectroforming. Magnetic flux density, field angle, stirring rate and cycle-averaged current were varied, while an exploratory reduced-domain transport model was used to estimate the direct Lorentz-force-related contribution to near-cathode mass transfer, and a separate six-variable screening step supplied a fabrication trial. The response was non-monotonic: the mean residual-stress magnitude was 217.7 ± 16.6 MPa at 0 mT, increased to 317.0 ± 13.6 MPa at 5 mT, and decreased to 191.6 ± 18.9 MPa at 10 mT. Field rotation redistributed rather than eliminated thickness gradients, with the poorest combined surface, diffraction and stress response occurring at 60°. The tested 400 and 500 rpm conditions revealed a trade-off between residual stress and thickness uniformity at 10 mT and 90°. Integrating magnetic control with pulse-reverse current and auxiliary-cathode control produced a nickel micropillar mold with a nine-region mean-height range of 1.40 μm and a nonuniformity of 14.7%. The integrated route gave a mean pull-off stress of 2.07 ± 0.11 MPa (n = 3); cohesive failure within the adhesive indicates that this value represents a lower bound on the Ni/Cu interfacial load-bearing capacity.

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Publication Details

Journal
Proceedings of the Institution of Mechanical Engineers Part L Journal of Materials Design and Applications
Published
2026-09-15
DOI
https://doi.org/10.1177/14644207261487179
Primary Topic
Electrodeposition and Electroless Coatings
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article
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article

Direction-dependent magnetic control of nickel microelectroforming: Deposition uniformity, residual stress and micropillar mold fabrication

Jingang Liu, Chen Chen, Kui Song
Proceedings of the Institution of Mechanical Engineers Part L Journal of Materials Design and Applications
Electrodeposition and Electroless Coatings
article

Direction-dependent magnetic control of nickel microelectroforming: Deposition uniformity, residual stress and micropillar mold fabrication

Jingang Liu, Chen Chen, Kui Song
article en

Abstract

Thickness gradients, residual stress and texture-related changes jointly constrain the dimensional reliability of nickel microelectroforming. This study examined how low-intensity magnetic-field magnitude and direction affect thickness uniformity, surface appearance, X-ray diffraction response and residual stress during nickel microelectroforming. Magnetic flux density, field angle, stirring rate and cycle-averaged current were varied, while an exploratory reduced-domain transport model was used to estimate the direct Lorentz-force-related contribution to near-cathode mass transfer, and a separate six-variable screening step supplied a fabrication trial. The response was non-monotonic: the mean residual-stress magnitude was 217.7 ± 16.6 MPa at 0 mT, increased to 317.0 ± 13.6 MPa at 5 mT, and decreased to 191.6 ± 18.9 MPa at 10 mT. Field rotation redistributed rather than eliminated thickness gradients, with the poorest combined surface, diffraction and stress response occurring at 60°. The tested 400 and 500 rpm conditions revealed a trade-off between residual stress and thickness uniformity at 10 mT and 90°. Integrating magnetic control with pulse-reverse current and auxiliary-cathode control produced a nickel micropillar mold with a nine-region mean-height range of 1.40 μm and a nonuniformity of 14.7%. The integrated route gave a mean pull-off stress of 2.07 ± 0.11 MPa (n = 3); cohesive failure within the adhesive indicates that this value represents a lower bound on the Ni/Cu interfacial load-bearing capacity.

Proceedings of the Institution of Mechanical Engineers Part L Journal of Materials Design and Applications
Xiangtan University (CN), Hunan Institute of Technology (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 21%
Electrodeposition and Electroless Coatings
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Direction-dependent magnetic control of nickel microelectroforming: Deposition uniformity, residual stress and micropillar mold fabrication — Jingang Liu, Chen Chen, et al. · Proceedings of the Institution of Mechanical Engineers Part L Journal of Materials Design and Applications (2026) | TGRS Research Map | TGRS