TY - JOUR
T1 - Achieving superconductivity with higher T cin lightweight Al-Ti-Mg alloys
T2 - Prediction using machine learning and synthesis via high-pressure torsion process
AU - Mito, Masaki
AU - Mokutani, Narimichi
AU - Tsuji, Hiroki
AU - Tang, Yongpeng
AU - Matsumoto, Kaname
AU - Murayama, Mitsuhiro
AU - Horita, Zenji
N1 - Publisher Copyright:
© 2022 Author(s).
PY - 2022/3/14
Y1 - 2022/3/14
N2 - Aluminum (Al) and titanium (Ti) are superconducting materials but their superconducting transition temperatures (T c) are quite low as 1.20 and 0.39 K, respectively, while magnesium (Mg) never exhibits superconductivity. In this study, we explored new superconductors with higher T c in the Al-Mg-Ti ternary system, along with the prediction using machine learning. High-pressure torsion (HPT) is utilized to produce the superconducting states. While performing AC magnetization measurements, we found, for the first time, superconducting states with T c = 4.0 and 7.3 K for a composition of Al:Ti = 1:2. The magnetic anomalies appeared more sharply when the sample was processed by HPT at 573 K than at room temperature, and the anomalies exhibited DC magnetic field dependence characteristic of superconductivity. Magnetic anomalies also appeared at ∼55 and ∼93 K, being supported by the prediction using the machine learning for the Al-Ti-O system, and this suggests that Al-Ti oxides play an important role in the advent of such anomalies but that the addition of Mg could be less effective.
AB - Aluminum (Al) and titanium (Ti) are superconducting materials but their superconducting transition temperatures (T c) are quite low as 1.20 and 0.39 K, respectively, while magnesium (Mg) never exhibits superconductivity. In this study, we explored new superconductors with higher T c in the Al-Mg-Ti ternary system, along with the prediction using machine learning. High-pressure torsion (HPT) is utilized to produce the superconducting states. While performing AC magnetization measurements, we found, for the first time, superconducting states with T c = 4.0 and 7.3 K for a composition of Al:Ti = 1:2. The magnetic anomalies appeared more sharply when the sample was processed by HPT at 573 K than at room temperature, and the anomalies exhibited DC magnetic field dependence characteristic of superconductivity. Magnetic anomalies also appeared at ∼55 and ∼93 K, being supported by the prediction using the machine learning for the Al-Ti-O system, and this suggests that Al-Ti oxides play an important role in the advent of such anomalies but that the addition of Mg could be less effective.
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U2 - 10.1063/5.0086694
DO - 10.1063/5.0086694
M3 - Article
AN - SCOPUS:85126595952
SN - 0021-8979
VL - 131
JO - Journal of Applied Physics
JF - Journal of Applied Physics
IS - 10
M1 - 105903
ER -