TY - JOUR
T1 - Laser additive manufacturing of a carbon-supersaturated β-Ti alloy for biomaterial application
AU - Dong, Mingqi
AU - Zhang, Yu
AU - Zhou, Weiwei
AU - Chen, Peng
AU - Zhou, Zhenxing
AU - Kanetaka, Hiroyasu
AU - Ishimoto, Takuya
AU - Koizumi, Yuichiro
AU - Nakano, Takayoshi
AU - Nomura, Naoyuki
N1 - Publisher Copyright:
© 2024 The Author(s)
PY - 2024/12
Y1 - 2024/12
N2 - Developing high-performance β-Ti alloys is a persistent and long-term demand for the advancement of next-generation biomaterials. In this study, a strategy of leveraging the unique characteristics of laser powder bed fusion (L-PBF) technique and nanocarbon materials was proposed to design a novel carbon-supersaturated β-Ti alloy. Ultrathin graphene oxide (GO) sheets were closely covering onto spherical Ti-15Mo-5Zr-3Al (Ti1553) powders, enhancing laser absorptivity while maintaining good flowability. Consequently, the GO-added Ti1553 builds tended to be denser than the initial ones, indicating an improved additive manufacturability. During L-PBF, GO sheets were completely dissolved into the Ti1553 matrix, generating fully carbon-supersaturated β-Ti structures with a reduced grain size. Thanks to the exceptional strengthening effects of high-concentration solid-solution carbon (∼0.05 wt%), the GO/Ti1553 builds achieved a high ultimate tensile strength of 1166 MPa. Moreover, as revealed by the immunofluorescence staining experiments, the GO/Ti1553 builds demonstrated a retained cytocompatibility. This study provides new insight into composition and processing design of high-performance Ti components for biomedical applications.
AB - Developing high-performance β-Ti alloys is a persistent and long-term demand for the advancement of next-generation biomaterials. In this study, a strategy of leveraging the unique characteristics of laser powder bed fusion (L-PBF) technique and nanocarbon materials was proposed to design a novel carbon-supersaturated β-Ti alloy. Ultrathin graphene oxide (GO) sheets were closely covering onto spherical Ti-15Mo-5Zr-3Al (Ti1553) powders, enhancing laser absorptivity while maintaining good flowability. Consequently, the GO-added Ti1553 builds tended to be denser than the initial ones, indicating an improved additive manufacturability. During L-PBF, GO sheets were completely dissolved into the Ti1553 matrix, generating fully carbon-supersaturated β-Ti structures with a reduced grain size. Thanks to the exceptional strengthening effects of high-concentration solid-solution carbon (∼0.05 wt%), the GO/Ti1553 builds achieved a high ultimate tensile strength of 1166 MPa. Moreover, as revealed by the immunofluorescence staining experiments, the GO/Ti1553 builds demonstrated a retained cytocompatibility. This study provides new insight into composition and processing design of high-performance Ti components for biomedical applications.
KW - Cytocompatibility
KW - L-PBF
KW - Microstructural evolution
KW - Solid solution strengthening
KW - β-Ti alloys
UR - http://www.scopus.com/inward/record.url?scp=85202926324&partnerID=8YFLogxK
U2 - 10.1016/j.addlet.2024.100233
DO - 10.1016/j.addlet.2024.100233
M3 - 学術論文
AN - SCOPUS:85202926324
SN - 2772-3690
VL - 11
JO - Additive Manufacturing Letters
JF - Additive Manufacturing Letters
M1 - 100233
ER -