TY - JOUR
T1 - High-throughput composition screening of Pt-modified aluminide coating for corrosion resistance in molten Na2SO4-NaCl salts at 900 °C
AU - Li, Mengqi
AU - Peng, Hui
AU - Guo, Hongbo
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/6/1
Y1 - 2025/6/1
N2 - A high-throughput magnetron sputtering technique was developed to fabricate multi-component Pt-modified aluminide ((Ni, Pt)Al) coatings to enhance corrosion resistance through compositional optimization. (Ni, Pt)Al, Dy-doped (Ni, Pt)Al, and Zr-doped (Ni, Pt)Al coatings were successfully prepared, all exhibiting dense and uniform microstructures with the thickness of approximately 30 μm. The (Ni, Pt)Al coatings featured compositional gradients of Pt (3–20 at.%) and Al (40–55 at.%). Increasing Pt content induced a phase transition from single-phase β-(Ni, Pt)Al to two-phase consisting of β-(Ni, Pt)Al and ζ-PtAl2. The hot corrosion behavior of representative coatings was investigated in the Na2SO4/NaCl (75:25, wt%) environment at 900 °C for 100 h. The coating with the composition 45.1Ni-8.3Pt-46.6Al (at.%) exhibited superior performance, forming the thinnest and compact α-Al2O3 oxide scale (~5 μm) while exhibiting the smallest internal oxidation depth (~10 μm). Furthermore, Dy and Zr doping improved the hot corrosion resistance by delaying the θ-Al2O3 to α-Al2O3 phase transition and reducing stress-induced cracking. Zr was more effective between the two dopants, as Dy extended the presence of the less protective θ phase. The experimental results provide some theoretical guidance for the subsequent design of (Ni, Pt)Al coatings and can lead to the development of thermal barrier coatings in corrosive environments.
AB - A high-throughput magnetron sputtering technique was developed to fabricate multi-component Pt-modified aluminide ((Ni, Pt)Al) coatings to enhance corrosion resistance through compositional optimization. (Ni, Pt)Al, Dy-doped (Ni, Pt)Al, and Zr-doped (Ni, Pt)Al coatings were successfully prepared, all exhibiting dense and uniform microstructures with the thickness of approximately 30 μm. The (Ni, Pt)Al coatings featured compositional gradients of Pt (3–20 at.%) and Al (40–55 at.%). Increasing Pt content induced a phase transition from single-phase β-(Ni, Pt)Al to two-phase consisting of β-(Ni, Pt)Al and ζ-PtAl2. The hot corrosion behavior of representative coatings was investigated in the Na2SO4/NaCl (75:25, wt%) environment at 900 °C for 100 h. The coating with the composition 45.1Ni-8.3Pt-46.6Al (at.%) exhibited superior performance, forming the thinnest and compact α-Al2O3 oxide scale (~5 μm) while exhibiting the smallest internal oxidation depth (~10 μm). Furthermore, Dy and Zr doping improved the hot corrosion resistance by delaying the θ-Al2O3 to α-Al2O3 phase transition and reducing stress-induced cracking. Zr was more effective between the two dopants, as Dy extended the presence of the less protective θ phase. The experimental results provide some theoretical guidance for the subsequent design of (Ni, Pt)Al coatings and can lead to the development of thermal barrier coatings in corrosive environments.
KW - Corrosion resistance
KW - High-throughput screening
KW - Pt-modified aluminide coating
KW - Reactive elements
UR - https://www.scopus.com/pages/publications/105000759877
U2 - 10.1016/j.surfcoat.2025.132071
DO - 10.1016/j.surfcoat.2025.132071
M3 - 文章
AN - SCOPUS:105000759877
SN - 0257-8972
VL - 505
JO - Surface and Coatings Technology
JF - Surface and Coatings Technology
M1 - 132071
ER -