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Theoretical and experimental study of energy transportation and accumulation in femtosecond laser ablation on metals 被引量:1

Theoretical and experimental study of energy transportation and accumulation in femtosecond laser ablation on metals
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摘要 The energy transportation and accumulation effect for femtosecond(fs)laser ablation on metal targets were studied using both theoretical and experimental methods.Using finite difference method,numerical simulation of energy transportation characteristics on copper target ablated by femtosecond laser was performed.Energy accumulation effects on metals of silver and copper ablated by an amplified Ti:sapphire femtosecond laser system were then studied experimentally.The simulated results show that the electrons and lattices have different temperature evolvement characteristics in the ablation stage.The electron temperature increases sharply and reaches the maximum in several femtoseconds while it needs thousands of femtoseconds for lattice to reach the maximum temperature.The experimental results show that uniform laser-induced periodic surface structures(PSS)can be formed with the appropriate pulsed numbers and laser energy density.Electron-phonon coupling coefficient plays an important role in PSS formation in different metals.Surface ripples of Cu are more pronounced than those of Au under the same laser energy density. The energy transportation and accumulation effect for femtosecond (fs) laser ablation on metal targets were studied using both theoretical and experimental methods. Using finite difference method, numerical simulation of energy transportation characteristics on copper target ablated by femtosecond laser was performed. Energy accumulation effects on metals of silver and copper ablated by an amplified Ti: sapphire femtosecond laser system were then studied experimentally. The simulated results show that the electrons and lattices have different temperature evolvement characteristics in the ablation stage. The electron temperature increases sharply and reaches the maximum in several femtoseeonds while it needs thousands of femtoseeonds for lattice to reach the maximum temperature. The experimental results show that uniform laser-induced periodic surface structures (PSS) can be formed with the appropriate pulsed numbers and laser energy density. Electron-phonon coupling coefficient plays an important role in PSS formation in different metals. Surface ripples of Cu are more pronounced than those of Au under the same laser energy density.
出处 《中国有色金属学会会刊:英文版》 EI CSCD 2009年第6期1645-1650,共6页 Transactions of Nonferrous Metals Society of China
基金 Project(10604017)supported by the National Natural Science Foundation of China Project(Q20091303)supported by the Education Branch of Hubei Province,China
关键词 激光烧蚀 能源运输 能量积累 金属钛 飞秒 实验 激光能量密度 电子温度 femtosecond laser ablation energy transportation energy accumulation periodic surface structure
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