4.6 Article

Application of femtosecond laser microfabrication in the preparation of advanced bioactive titanium surfaces

Journal

JOURNAL OF MATERIALS CHEMISTRY B
Volume 9, Issue 18, Pages 3912-3924

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1tb00231g

Keywords

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Funding

  1. National Key RD Program [2016YFB0700800]
  2. Sichuan Province Major Scientific AMP
  3. Technological Achievements Transformation Demonstration Project [2016CZYD0004]

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This study demonstrated that femtosecond laser microfabrication can enhance the hydrophilicity, surface energy, and active site contents of titanium surfaces, resulting in improved ability to induce apatite deposition. Compared to traditional methods, femtosecond laser treatment showed better bioactivity and osteointegration potential, offering a more efficient and controllable scheme for titanium bioactivation.
The surface activation of titanium plays a key role in the biological properties of titanium implants as bone repair materials. Improving the ability to induce apatite precipitation on the surface was a well-accepted titanium bioactivation route. In this study, advanced femtosecond laser microfabrication was applied to modify titanium surfaces, and the effect of femtosecond laser etching on apatite precipitation was investigated and compared with popular titanium modification methods. Meanwhile, the mechanism of apatite formation after femtosecond laser modification was interpreted from the point of materials science. The surface physical-chemical characterization results showed that femtosecond laser etching can improve the surface hydrophilicity and increase the surface energy. Compared with traditional abrasive paper and acid-alkali treatment, this method increased the contents of active sites including titanium oxide and titanium-hydroxyl on titanium surfaces. TiO2 on the surface was transformed to TiO after femtosecond laser treatment. The samples etched with 0.3 W and 0.5 W femtosecond lasers had a better ability to induce apatite deposition than those treated with traditional mechanical treatment and popular acid-alkali modification, which would lead to better bioactivity and osteointegration. Considering the technical advantages of femtosecond lasers in microfabrication, it provides a more efficient and controllable scheme for the bioactivation of titanium. This research would improve the application potential of femtosecond laser treatment, such as micropattern preparation and surface activation, in the field of biomaterials.

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