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Research Article

Friction-assisted pulse electrodeposition of high-performance ultrafine-grained Cu deposits

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Pages 1414-1421 | Received 01 Aug 2021, Accepted 29 Aug 2021, Published online: 08 Sep 2021
 

ABSTRACT

Ultrafine-grained (UFG) Cu deposits were prepared using pulse electrodeposition assisted by hard particle friction under strong cathodic polarisation in an additive-free bath. The effects of hard particle friction on the resulting electrochemical behaviour, microstructure, and mechanical properties of the deposits were studied. The results demonstrate that friction can effectively weaken the concentration polarisation and maintain the stability of the cathodic polarisation process. Periodic growth inhibition and the promotion of lateral growth owing to the applied friction lead to the formation of finer equiaxed grains (130 ± 5 nm). The UFG Cu deposits produced using friction-assisted pulse electrodeposition had a preferential (111) orientation, compared to a (220) orientation in deposits produced using conventional pulse electrodeposition. The corresponding tensile strength was 630 ± 15 MPa and the elongation to failure was 14.5 ± 2.5%. The hardness and surface roughness were 183–204 HV and Ra 46 ± 5 nm, respectively.

Disclosure statement

No potential conflict of interest was reported by the author(s).

Additional information

Funding

This work was supported by National Natural Science Foundation of China: [grant number 51475239]; Natural Science Foundation of Jiangsu Province: [grant number BK20192007].

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