Effects of Nanoscale precipitates on mechanical properties, corrosion resistance, and biocompatibility in Zn-Mn alloy

C Cuilan Dong Z Zikun Liao Y Yanyi Yin Y Yinzhi Yi G Guanghui Zhu T Tuquan Zheng Q Qian Tan Y Yonghong Xie

Abstract

Abstract Controlling degradation rate is essential for the biomedical application of biodegradable Zn alloys. Alloying with soluble elements is an effective way to regulate formation of second phases, which differ in potential from the Zn matrix. The potential difference exhibits positive or negative effects on corrosion resistance. This study successfully forms MnZn13 phase with nano size by altering ECAP temperature. Subsequently, MnZn13 phase promotes grain refinement, improvement of elongation, and corrosion resistance. Higher elongation in Zn-Mn alloy with MnZn13 phase is attributed to the grain boundary sliding, deformation twins in MnZn13 phase. Meanwhile, grain boundary corrosion in Zn-Mn alloy with MnZn13 phase is incomplete. Corrosion mode of Zn-Mn alloys without MnZn13 phase is dominated by grain boundary corrosion, accompanied by pitting corrosion. The increased corrosion resistance from MnZn13 phase stems from its higher potential than Zn matrix. Zn-Mn alloys with and without MnZn13 phase show a comparable cytocompatibility and osteogenic properties. Our findings provide an effective way to regulating mechanical properties and corrosion resistance of Zn alloys via controlling precipitation.

Article Details

Volume / Issue Vol. 15, Issue 1
Published February 14, 2025
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (8)

C

Cuilan Dong

Z

Zikun Liao

Y

Yanyi Yin

Y

Yinzhi Yi

G

Guanghui Zhu

T

Tuquan Zheng

Q

Qian Tan

Y

Yonghong Xie