Optical penetration models for practical prediction of femtosecond laser ablation of dental hard tissue

Author:

Woodfield Peter L.1ORCID,Rode Andrei V.2,Dao Dzung1,Dau Van Thanh1,Madden Steve2,Walsh Laurence J.34ORCID,Spallek Heiko5,Walsh Lee6,Sutton Andrew J.7,Zuaiter Omar4,Habeb Alaa4,Hirst Timothy R.4,Rapp Ludovic2

Affiliation:

1. School of Engineering and Built Environment Griffith University Gold Coast Queensland Australia

2. Department of Quantum Science and Technology Research School of Physics, Laser Physics Centre, Australian National University Canberra Australian Capital Territory Australia

3. School of Dentistry The University of Queensland Herston Queensland Australia

4. Dentroid Pty Ltd Canberra Australian Capital Territory Australia

5. Faculty of Medicine and Health The University of Sydney School of Dentistry Surry Hills New South Wales Australia

6. Platypus MedTech Consulting Pty Ltd Barton Australian Capital Territory Australia

7. Centre for Gravitational Astrophysics The Australian National University Acton Australian Capital Territory Australia

Abstract

AbstractObjectivesTo develop and practically test high‐precision femtosecond laser ablation models for dental hard tissue that are useful for detailed planning of automated laser dental restorative treatment.MethodsAnalytical models are proposed, derived, and demonstrated for practical calculation of ablation rates, ablation efficiency and ablated morphology of human dental enamel and dentin using femtosecond lasers. The models assume an effective optical attenuation coefficient for the irradiated material. To achieve ablation, it is necessary for the local energy density of the attenuated pulse in the hard tissue to surpass a predefined threshold that signifies the minimum energy density required for material ionization. A 1029 nm, 40 W carbide 275 fs laser was used to ablate sliced adult human teeth and generate the data necessary for testing the models. The volume of material removed, and the shape of the ablated channel were measured using optical profilometry.ResultsThe models fit with the measured ablation efficiency curve against laser fluence for both enamel and dentin, correctly capturing the fluence for optimum ablation and the volume of ablated material per pulse. The detailed shapes of a 400‐micrometer wide channel and a single‐pulse width channel are accurately predicted using the superposition of the analytical result for a single pulse.ConclusionsThe findings have value for planning automated dental restorative treatment using femtosecond lasers. The measurements and analysis give estimates of the optical properties of enamel and dentin irradiated with an infrared femtosecond laser at above‐threshold fluence and the proposed models give insight into the physics of femtosecond laser processing of dental hard tissue.

Publisher

Wiley

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