Thermal effects on femtosecond laser pulses on materials
Laser-materials interaction with femtosecond (ultrashort) pulses is different from that of nanosecond (long) pulses, creating significant scientific interest and practical applications. For nanosecond lasers, a significant amount of the laser power irradiated onto a material is conducted away, as ev...
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sg-ntu-dr.10356-606222020-11-01T11:28:53Z Thermal effects on femtosecond laser pulses on materials Tran, Duc Vi Lam Yee Cheong School of Mechanical and Aerospace Engineering Singapore-MIT Alliance Programme DRNTU::Engineering::Manufacturing Laser-materials interaction with femtosecond (ultrashort) pulses is different from that of nanosecond (long) pulses, creating significant scientific interest and practical applications. For nanosecond lasers, a significant amount of the laser power irradiated onto a material is conducted away, as evident by the observed molten layers and heat affected zone in the vicinity of the irradiated area. In contrast, irradiation by femtosecond lasers causes hardly any molten materials and limited heat-affected zone. Thus, the current wisdom is that there is negligible, if any, heat conduction for femtosecond laser processing. The existing explanation is that laser pulses of less than a picosecond duration have insufficient time for significant heat conduction to the surrounding area. Hitherto, there has been no direct experimental observation substantiating this explanation. Employing an infrared thermography technique, the temperature field is directly observed in specimens irradiated by femtosecond laser pulses over a large range of laser powers on two different materials, namely crystalline silicon and steel. This experimental set-up is simple, but has a high degree of confidence and repeatability. The results obtained demonstrate that the current belief of no or negligible heat conduction for femtosecond laser processing is unfounded, and that two thirds or more of the laser power are dissipated by the specimens through conduction and heat losses along the specimens, with thermal conduction as the dominant mechanism. These findings have significant implications on the fundamental assumptions of heat conduction and processing with femtosecond laser pulses. Doctor of Philosophy (IMST) 2014-05-29T02:54:12Z 2014-05-29T02:54:12Z 2005 2005 Thesis http://hdl.handle.net/10356/60622 en 176 p. application/pdf |
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DRNTU::Engineering::Manufacturing Tran, Duc Vi Thermal effects on femtosecond laser pulses on materials |
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Laser-materials interaction with femtosecond (ultrashort) pulses is different from that of nanosecond (long) pulses, creating significant scientific interest and practical applications. For nanosecond lasers, a significant amount of the laser power irradiated onto a material is conducted away, as evident by the observed molten layers and heat affected zone in the vicinity of the irradiated area. In contrast, irradiation by femtosecond lasers causes hardly any molten materials and limited heat-affected zone. Thus, the current wisdom is that there is negligible, if any, heat conduction for femtosecond laser processing. The existing explanation is that laser pulses of less than a picosecond duration have insufficient time for significant heat conduction to the surrounding area. Hitherto, there has been no direct experimental observation substantiating this explanation. Employing an infrared thermography technique, the temperature field is directly observed in specimens irradiated by femtosecond laser pulses over a large range of laser powers on two different materials, namely crystalline silicon and steel. This experimental set-up is simple, but has a high degree of confidence and repeatability. The results obtained demonstrate that the current belief of no or negligible heat conduction for femtosecond laser processing is unfounded, and that two thirds or more of the laser power are dissipated by the specimens through conduction and heat losses along the specimens, with thermal conduction as the dominant mechanism. These findings have significant implications on the fundamental assumptions of heat conduction and processing with femtosecond laser pulses. |
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Lam Yee Cheong |
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Lam Yee Cheong Tran, Duc Vi |
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Theses and Dissertations |
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Tran, Duc Vi |
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Tran, Duc Vi |
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Thermal effects on femtosecond laser pulses on materials |
title_short |
Thermal effects on femtosecond laser pulses on materials |
title_full |
Thermal effects on femtosecond laser pulses on materials |
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Thermal effects on femtosecond laser pulses on materials |
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Thermal effects on femtosecond laser pulses on materials |
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thermal effects on femtosecond laser pulses on materials |
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2014 |
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http://hdl.handle.net/10356/60622 |
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