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NIR-responsive nano-holed titanium alloy surfaces: a photothermally activated antimicrobial biointerface
Denise B Pistonesi1, Federico Belén1, Juan M Ruso2
1Department of Chemistry, Universidad Nacional del Sur, INQUISUR - CONICET, B8000CPB, Bahía Blanca, Argentina. pmessina@uns.edu.ar.
Journal of Materials Chemistry. B
|August 15, 2024
Summary
This study developed a novel titanium alloy coating with silver nanoparticles that effectively harnesses near-infrared light for bone regeneration and bacterial elimination, advancing orthopedic treatments.
Area of Science:
- Biomaterials Science
- Orthopedic Research
- Nanotechnology
Background:
- External stimuli-responsive therapies, particularly near-infrared (NIR) light irradiation, are crucial for bone disease treatment and regeneration.
- Developing NIR-sensitive metallic biomaterials is a key research focus in orthopedics.
Purpose of the Study:
- To create a novel NIR-sensitive metallic biomaterial for enhanced bone therapeutic procedures.
- To investigate the photothermal properties of silver nanoparticles integrated into a titanium dioxide coating.
Main Methods:
- Generated prism-shaped silver nanoparticles (p-AgNPs) in situ within a biomorphic nano-holed TiO2 coating on a Ti6Al4V alloy.
- Analyzed the impact of p-AgNPs on the optical properties and NIR reflectivity of the dielectric structure.
- Evaluated the efficiency of NIR photothermal energy conversion for therapeutic applications.
Main Results:
- Insertion of p-AgNPs enhanced NIR reflectivity and photothermal energy conversion efficiency without disrupting the underlying dielectric structure.
- The developed material demonstrated high efficiency in bacterial annihilation via photothermal effects.
- The unique optical response of the modified coating is suitable for therapeutic applications.
Conclusions:
- The novel TiO2 coating with integrated p-AgNPs shows significant promise for bone therapeutic procedures.
- This approach offers new insights into precision medicine for orthopedic applications.
- The material's ability to convert NIR light into heat for bacterial killing is a key advancement.

