Literature DB >> 30839523

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

Lan Jiang1, An-Dong Wang1, Bo Li1, Tian-Hong Cui2, Yong-Feng Lu3.   

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 during fabrication processes. Pump-probe spectroscopy presents a viable solution, which can be used to observe electron dynamics during a chemical reaction. In fact, femtosecond pulse durations are shorter than many physical/chemical characteristic times, which permits manipulating, adjusting, or interfering with electron dynamics. Hence, we proposed to control localized transient electron dynamics by temporally or spatially shaping femtosecond pulses, and further to modify localized transient materials properties, and then to adjust material phase change, and eventually to implement a novel fabrication method. This review covers our progresses over the past decade regarding electrons dynamics control (EDC) by shaping femtosecond laser pulses in micro/nanomanufacturing: (1) Theoretical models were developed to prove EDC feasibility and reveal its mechanisms; (2) on the basis of the theoretical predictions, many experiments are conducted to validate our EDC-based femtosecond laser fabrication method. Seven examples are reported, which proves that the proposed method can significantly improve fabrication precision, quality, throughput and repeatability and effectively control micro/nanoscale structures; (3) a multiscale measurement system was proposed and developed to study the fundamentals of EDC from the femtosecond scale to the nanosecond scale and to the millisecond scale; and (4) As an example of practical applications, our method was employed to fabricate some key structures in one of the 16 Chinese National S&T Major Projects, for which electron dynamics were measured using our multiscale measurement system.

Entities:  

Keywords:  electrons dynamics control; femtosecond laser; micro/nano fabrication; pulse shaping

Year:  2018        PMID: 30839523      PMCID: PMC6060063          DOI: 10.1038/lsa.2017.134

Source DB:  PubMed          Journal:  Light Sci Appl        ISSN: 2047-7538            Impact factor:   17.782


  87 in total

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7.  Isotope selective ionization by optimal control using shaped femtosecond laser pulses.

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8.  Order-disorder transitions in the melt morphology of laser-irradiated silicon.

Authors: 
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9.  Generation and characterization of the highest laser intensities (10(22) W/cm2).

Authors:  S W Bahk; P Rousseau; T A Planchon; V Chvykov; G Kalintchenko; A Maksimchuk; G A Mourou; V Yanovsky
Journal:  Opt Lett       Date:  2004-12-15       Impact factor: 3.776

10.  Selective bond dissociation and rearrangement with optimally tailored, strong-field laser pulses.

Authors:  R J Levis; G M Menkir; H Rabitz
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5.  Ultrafast optical response and ablation mechanisms of molybdenum disulfide under intense femtosecond laser irradiation.

Authors:  Changji Pan; Lan Jiang; Jingya Sun; Qingsong Wang; Feifei Wang; Kai Wang; Yongfeng Lu; Yeliang Wang; Liangti Qu; Tianhong Cui
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6.  O-FIB: far-field-induced near-field breakdown for direct nanowriting in an atmospheric environment.

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7.  One-Step In Situ Patternable Reduction of a Ag-rGO Hybrid Using Temporally Shaped Femtosecond Pulses.

Authors:  Quan Hong; Lan Jiang; Sumei Wang; Ji Huang; Jiaxin Sun; Xin Li; Pei Zuo; Jiangang Yin; Jiangang Lu
Journal:  Materials (Basel)       Date:  2022-01-12       Impact factor: 3.623

  7 in total

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