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Hydroxyapatite coatings on Ti produced by hot isostatic pressing
1NIOM, Scandinavian Institute of Dental Materials, Haslum, Norway.
Journal of Biomedical Materials Research
|March 1, 1994
Summary
Hot isostatic pressing (HIP) offers a superior method for creating hydroxyapatite (HA) coatings on titanium implants, yielding denser coatings with stronger bonds than traditional plasma spraying.
Area of Science:
- Biomaterials Engineering
- Surface Science
- Orthopedic Implants
Background:
- Plasma spraying is a common method for hydroxyapatite (HA) coatings on titanium (Ti) implants.
- These coatings exhibit porosity, dissolution, and weak substrate bonding, raising concerns about long-term interface strength.
Purpose of the Study:
- To develop an alternative method for producing HA coatings on Ti substrates.
- To overcome the limitations of plasma-sprayed coatings, specifically improving density and bond strength.
Main Methods:
- Hydroxyapatite (HA) powder was mixed with water and air-sprayed onto Ti substrates.
- Specimens underwent cold pressing, encapsulation in platinum foil and glass, followed by Hot Isostatic Pressing (HIP) at 850°C and 1000 bar.
- Post-HIP processing involved removing the glass and platinum foil.
Main Results:
- The HIP-processed HA coatings were significantly denser than plasma-sprayed coatings.
- Measured bonding strength exceeded 62 MPa, considered satisfactory.
- X-ray diffraction and IR spectroscopy confirmed the coating structure matched HA.
- Vertical cracks were observed in the coatings.
Conclusions:
- Hot isostatic pressing (HIP) is a viable technique for producing dense, well-bonded HA coatings on titanium.
- The observed bonding strength suggests improved long-term implant stability.
- Further in vivo studies are required to assess the clinical acceptability of the observed coating microstructures, particularly the cracks.

