Surface & Coatings Technology2022,Vol.4319.DOI:10.1016/j.surfcoat.2021.127998

Nanostructured hydroxyapatite coatings on NiTi shape memory alloys by ultrasonic mechanical coating and armouring

Ou, Shih-Fu Lin, Ming-Hong Fan, Fang-Yu Kuo, Cheng Hsien Lin, Liang-Wei Wang, Kuang-Kuo Chen, Chin-Fu Wang, Yan-Hsiung
Surface & Coatings Technology2022,Vol.4319.DOI:10.1016/j.surfcoat.2021.127998

Nanostructured hydroxyapatite coatings on NiTi shape memory alloys by ultrasonic mechanical coating and armouring

Ou, Shih-Fu 1Lin, Ming-Hong 1Fan, Fang-Yu 2Kuo, Cheng Hsien 1Lin, Liang-Wei 1Wang, Kuang-Kuo 3Chen, Chin-Fu 4Wang, Yan-Hsiung
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作者信息

  • 1. Natl Kaohsiung Univ Sci & Technol
  • 2. Taipei Med Univ
  • 3. Natl Sun Yat Sen Univ
  • 4. Kaohsiung Med Univ
  • 折叠

Abstract

Mechanical energy-induced deposition on NiTi shape memory alloys (SMAs) is difficult to accomplish due to the pseudoelasticity of NiTi SMAs. In this study, a high-frequency ball-bombardment method called ultrasonic mechanical coating and armouring (UMCA) is introduced to synthesize a hydroxyapatite (HA)-containing coating on a NiTi SMA. The effects of treatment duration, Ti addition, and ball-to-powder ratio on the HA content of the coating are investigated. Results show that the HA content of the coating largely increased during the initial 10 s and decreased with further ball-bombardment. The addition of Ti powder into the chamber assisted HA anchoring on the NiTi SMA surface. Using a ball-to-powder ratio of 1:1 induced the highest HA content on the NiTi SMA as compared to the 1:2 and 2:1 ratios. Coating consisting of 10-50 nm nanoparticles of HA and Ti formed under localized compressive forces were induced through shot collisions. The bombardment also created a local amorphous structure of the NiTi SMA near the coating/NiTi SMA interface. Laser annealing induced oxidation of the coating, which improved the coating adhesion and corrosion resistance of the NiTi SMA in Hank's balanced salt solution.

Key words

NiTi/Shape memory alloy/Mechanical alloying/Hydroxyapatite/COMMERCIALLY PURE TITANIUM/ATTRITION TREATMENT/CORROSION-RESISTANCE/COMPOSITE COATINGS/IN-VITRO/SURFACE/BEHAVIOR/BONE/AL/MICROSTRUCTURE

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出版年

2022
Surface & Coatings Technology

Surface & Coatings Technology

ISTP
ISSN:0257-8972
被引量3
参考文献量44
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