Removal of scratches on fused silica optics by using a CO₂laser.
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P. Combis | L. Lamaignère | J. Rullier | L. Gallais | C. Hecquet | P. Cormont | P Cormont | L Gallais | L Lamaignère | J L Rullier | P Combis | C Hecquet
[1] Edward I. Moses,et al. Advances in inertial confinement fusion at the National Ignition Facility (NIF) , 2010 .
[2] Laurent Lamaignère,et al. Effects of scratch speed on laser-induced damage , 2005, SPIE Laser Damage.
[3] H. Baker,et al. Effect of vaporization and melt ejection on laser machining of silica glass micro-optical components. , 2002, Applied optics.
[4] J. Néauport,et al. Loose abrasive slurries for optical glass lapping. , 2010, Applied optics.
[5] Manyalibo J. Matthews,et al. Downstream intensification effects associated with CO2 laser mitigation of fused silica , 2007, SPIE Laser Damage.
[6] Paul J. Wegner,et al. An improved method of mitigating laser-induced surface damage growth in fused silica using a rastered pulsed CO2 laser , 2010, Laser Damage.
[7] Francois Y. Genin,et al. Laser-induced damage of fused silica at 355 nm initiated at scratches , 1998, Laser Damage.
[8] P. Combis,et al. Impact of two CO(2) laser heatings for damage repairing on fused silica surface. , 2010, Optics express.
[9] Krzysztof M Nowak,et al. Efficient laser polishing of silica micro-optic components. , 2006, Applied optics.
[10] Laurent Gallais,et al. Optimization of a laser mitigation process in damaged fused silica , 2009 .
[11] Ahmed Busnaina,et al. Analysis of Scratches Formed on Oxide Surface during Chemical Mechanical Planarization , 2010 .
[12] Roy McBride,et al. Laser smoothing of binary gratings and multilevel etched structures in fused silica. , 2010, Applied optics.
[13] D. Boldridge,et al. Analysis of Large Particle Count in Fumed Silica Slurries and Its Correlation with Scratch Defects Generated by CMP , 2006 .
[14] Randolph R. Settgast,et al. Thermomechanical Modeling of Laser‐Induced Structural Relaxation and Deformation of Glass: Volume Changes in Fused Silica at High Temperatures , 2013 .
[15] In-Kwon Kim,et al. Generation of Pad Debris during Oxide CMP Process and Its Role in Scratch Formation , 2011 .
[16] P E Miller,et al. Effect of rogue particles on the sub-surface damage of fused silica during grinding/polishing , 2007 .
[17] Christopher J. Stolz,et al. The National Ignition Facility: the world's largest optical system , 2007, SPIE/COS Photonics Asia.
[18] P. Combis,et al. Evaluation of the fused silica thermal conductivity by comparing infrared thermometry measurements with two-dimensional simulations , 2012 .
[19] Martha Rosete-Aguilar,et al. Rod and spherical silica microlenses fabricated by CO2 laser melting. , 2005, Applied optics.
[20] D Milam,et al. Carbon dioxide laser polishing of fused silica surfaces for increased laser-damage resistance at 1064 nm. , 1982, Applied optics.
[21] Michael D. Feit,et al. Mechanisms of CO2 laser mitigation of laser damage growth in fused silica , 2003, SPIE Laser Damage.
[22] Jean-Luc Rullier,et al. Initiation of laser-induced damage sites in fused silica optical components. , 2009, Optics express.
[23] Michael D. Feit,et al. Densification and residual stress induced by CO2 laser-based mitigation of SiO2 surfaces , 2010, Laser Damage.
[24] Xiaodong Yuan,et al. Surface evolution and laser damage resistance of CO2 laser irradiated area of fused silica , 2011 .
[25] Dave Roberts,et al. A system for measuring defect induced beam modulation on inertial confinement fusion-class laser optics , 2005, SPIE Laser Damage.
[26] Laurent Gallais,et al. Investigation of stress induced by CO2 laser processing of fused silica optics for laser damage growth mitigation. , 2009, Optics express.
[27] P. Combis,et al. Infrared thermometry and interferential microscopy for analysis of crater formation at the surface of fused silica under CO2 laser irradiation , 2012 .
[28] Pavan Karra,et al. Prediction of Scratch Generation in Chemical Mechanical Planarization , 2008 .
[29] J Ebrardt,et al. LMJ on its way to fusion , 2010 .
[30] T. R. Anthony,et al. Surface rippling induced by surface‐tension gradients during laser surface melting and alloying , 1977 .
[31] Manyalibo J. Matthews,et al. Comparing the use of mid-infrared versus far-infrared lasers for mitigating damage growth on fused silica , 2010 .
[32] Laurent Lamaignère,et al. Comparison of laser-induced surface damage density measurements with small and large beams: toward representativeness. , 2011, Applied optics.
[33] Herve Bercegol,et al. Observation of laser-induced damage on fused silica initiated by scratches , 2005, SPIE Laser Damage.