The crucial role of the Seebeck effect in the degradation behavior of Mg-based biomedical alloys

Y Yaning Sun (School of Integrated Circuit Science and Engineering, Beihang University 1 , Beijing 100191,) B Binbin Ma Y Ye Hou (Institute of Biomedical Sciences, Inner Mongolia University 2 , 49 South Xilin Road, Hohhot, Inner Mongolia 010020,) J Junjie Liu (Institute of Molecular Physiology) L Luqiang Zhang (Inner Mongolia Key Laboratory of Biophysics and Bioinformatics, School of Physical Science and Technology, Inner Mongolia University 1 , 235 West College Road, Hohhot, Inner Mongolia 010021,) J Jun Wang

Abstract

Biodegradable magnesium alloys hold great promise as orthopedic implants due to their bone-matching elastic modulus and capacity to eliminate secondary removal surgery. Nevertheless, the often-ignored role of the thermoelectric effect of Mg alloy biomedical materials in their corrosion process might have led to a research gap in this field. This overlooked role of the thermoelectric effect has prompted this study, which aims to investigate the effects of Zn content on the microstructure, corrosion behavior, and biophysical properties of Mg–3Sn–xZn (x = 0, 1, 3, 5, 7 wt. %) alloys. Specifically, this study evaluates the micro-current generated by degradation-induced galvanic effects, especially the Seebeck effect, and its subsequent impact on cell viability and migration, which are closely related to the investigated microstructure, corrosion behavior, and biophysical properties of Mg–3Sn–xZn alloys. Results indicate that the Mg–3Sn–5Zn alloy exhibits optimal comprehensive performance, demonstrating favorable degradation kinetics, enhanced biocompatibility, notable antibacterial properties, and improved in vitro corrosion resistance. Critically, the degradation-induced micro-current significantly promotes cell viability and migration, thereby facilitating tissue repair. This work establishes an innovative correlation between the alloy's Seebeck coefficient and biocompatibility, offering mechanistic insights for biodegradable bone-repair materials and advancing their clinical translation.

Article Details

Volume / Issue Vol. 128, Issue 9
Published March 02, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (6)

Y

Yaning Sun

School of Integrated Circuit Science and Engineering, Beihang University 1 , Beijing 100191,

B

Binbin Ma

Y

Ye Hou

Institute of Biomedical Sciences, Inner Mongolia University 2 , 49 South Xilin Road, Hohhot, Inner Mongolia 010020,

J

Junjie Liu

Institute of Molecular Physiology

L

Luqiang Zhang

Inner Mongolia Key Laboratory of Biophysics and Bioinformatics, School of Physical Science and Technology, Inner Mongolia University 1 , 235 West College Road, Hohhot, Inner Mongolia 010021,

J

Jun Wang