TY - JOUR
T1 - Achieving high oxygen tolerance in Ti6Al4V
T2 - Copper-oxygen co-doping strategy for ultrahigh strength-ductility balance
AU - Duan, Hongqiang
AU - Zhang, Hongmei
AU - Cheng, Xingwang
AU - Mu, Xiaonan
AU - Fan, Qunbo
AU - Zhang, Ying
AU - Xiong, Ni
AU - Feng, Ke
AU - Wang, Yu
AU - Li, Xuexia
AU - Cai, Taotao
AU - Zheng, Kefan
N1 - Publisher Copyright:
© 2025
PY - 2025/11
Y1 - 2025/11
N2 - Conventional α + β Ti6Al4V alloys lack sufficient strengthening mechanisms, limiting strength. While oxygen (O) offers a cost-effective strengthening route, exceeding ∼ 0.33 wt% causes significant embrittlement. Here, we explored how to efficiently utilize interstitial oxygen to enhance the mechanical properties of Ti6Al4V. The copper oxide (CuO) was innovatively employed as a precursor to completely dissolve into Ti6Al4V matrix, interstitial O and substitutional Cu atoms were simultaneously utilized to strengthen the primary α-phase (αp) while inducing the abundant secondary-α (αs) nanoprecipitates. Surprisingly, the introduction of Cu element facilitated control of lattice distortion and redistributed oxygen between αp and β-transformed (βtrans) structure, resulting in the Ti6Al4V-2.5CuO (wt.%) alloy with high oxygen tolerance (0.62 wt%) and an ultra-high ultimate strength of ∼ 1635 MPa and a favorable ductility of ∼ 5.3 %. The dual effect of interstitial solid solution strengthening and αs precipitation strengthening were achieved under the Cu/O interaction. Additionally, the addition of Cu promoted the oxygen redistribution and activation of the basal < a > and pyramidal < c + a > slip systems, thereby ensuring improved ductility. This study presented a novel strategy for high-strength Ti alloys using interstitial oxygen, maximizing strengthening while mitigating embrittlement.
AB - Conventional α + β Ti6Al4V alloys lack sufficient strengthening mechanisms, limiting strength. While oxygen (O) offers a cost-effective strengthening route, exceeding ∼ 0.33 wt% causes significant embrittlement. Here, we explored how to efficiently utilize interstitial oxygen to enhance the mechanical properties of Ti6Al4V. The copper oxide (CuO) was innovatively employed as a precursor to completely dissolve into Ti6Al4V matrix, interstitial O and substitutional Cu atoms were simultaneously utilized to strengthen the primary α-phase (αp) while inducing the abundant secondary-α (αs) nanoprecipitates. Surprisingly, the introduction of Cu element facilitated control of lattice distortion and redistributed oxygen between αp and β-transformed (βtrans) structure, resulting in the Ti6Al4V-2.5CuO (wt.%) alloy with high oxygen tolerance (0.62 wt%) and an ultra-high ultimate strength of ∼ 1635 MPa and a favorable ductility of ∼ 5.3 %. The dual effect of interstitial solid solution strengthening and αs precipitation strengthening were achieved under the Cu/O interaction. Additionally, the addition of Cu promoted the oxygen redistribution and activation of the basal < a > and pyramidal < c + a > slip systems, thereby ensuring improved ductility. This study presented a novel strategy for high-strength Ti alloys using interstitial oxygen, maximizing strengthening while mitigating embrittlement.
KW - Copper oxide
KW - Deformation mechanisms
KW - Mechanical properties
KW - Microstructure evolution
KW - Ti alloys
UR - http://www.scopus.com/pages/publications/105015640062
U2 - 10.1016/j.matdes.2025.114719
DO - 10.1016/j.matdes.2025.114719
M3 - Article
AN - SCOPUS:105015640062
SN - 0264-1275
VL - 259
JO - Materials and Design
JF - Materials and Design
M1 - 114719
ER -