2017
DOI: 10.1038/lsa.2017.134
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Electrons dynamics control by shaping femtosecond laser pulses in micro/nanofabrication: modeling, method, measurement and application

Abstract: During femtosecond laser fabrication, photons are mainly absorbed by electrons, and the subsequent energy transfer from electrons to ions is of picosecond order. Hence, lattice motion is negligible within the femtosecond pulse duration, whereas femtosecond photon-electron interactions dominate the entire fabrication process. Therefore, femtosecond laser fabrication must be improved by controlling localized transient electron dynamics, which poses a challenge for measuring and controlling at the electron level … Show more

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Cited by 351 publications
(214 citation statements)
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“…However, these techniques have certain limitations, such as high cost, requirement of complex systems like masks and vacuums, and lack of flexibility. The formation of laser‐induced periodic surface structures (LIPSS), which is first observed by Birnbaum in 1965, provides a mask‐free, nonvacuum, and low‐cost processing procedure for fabricating periodic structures on sample surfaces and exhibits powerful potential in various applications . After decades of research, multiple works have focused on LIPSS formation on a diverse range of materials .…”
Section: Introductionmentioning
confidence: 99%
“…However, these techniques have certain limitations, such as high cost, requirement of complex systems like masks and vacuums, and lack of flexibility. The formation of laser‐induced periodic surface structures (LIPSS), which is first observed by Birnbaum in 1965, provides a mask‐free, nonvacuum, and low‐cost processing procedure for fabricating periodic structures on sample surfaces and exhibits powerful potential in various applications . After decades of research, multiple works have focused on LIPSS formation on a diverse range of materials .…”
Section: Introductionmentioning
confidence: 99%
“…These periodical structures with a subwavelength-scale period hold potential in technological applications because of their unique advantages, including multiphonon absorption, a precise ablation threshold, excellent controllability, and a negligible heat-affected zone [54][55][56][57][58][59][60] . Fs irradiation allows high-level control of the modification of the morphology and properties in nanofabrication approaches, where the feature size is limited only by the spot size of the laser beam [61][62][63] . This control is due to the fact that lasers can deposit a large amount of energy per unit area over a temporal scale shorter than the phonon-electron relaxation time 64 .…”
mentioning
confidence: 99%
“…Femtosecond laser pulse shaping in the time domain is a new fabrication method that can improve and control ultrafast laser fabrication [49][50][51][52][53]. During femtosecond laser fabrication, most photon energy is initially absorbed by electrons.…”
Section: Femtosecond Fabrication By Laser Pulse Shaping In Time Domainmentioning
confidence: 99%
“…Basically, microhole fabrication requires high-quality (no recast layer, no crack, no heat-affected zone, uniform density) and various materials (alloys, polymers, glass, etc.). Especially, in a few special cases, microholes must have a high aspect ratio (10:1 to 100:1 or even higher) and be nonpolluting [53,167]. Femtosecond laser has the advantages of minimizing heataffected zone, less recasting layer, non-contact in processing, and no need of liquid/acid-base assistance and it has become one of the most promising processing methods to fabricate high-aspect-ratio microholes [167,[172][173][174][175].…”
Section: High-aspect-ratio Microholesmentioning
confidence: 99%
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