Throughput improvement in femtosecond laser ablation of nickel by double pulses

  • Kunpeng Chu
  • , Baoshan Guo*
  • , Lan Jiang
  • , Yanhong Hua
  • , Shuai Gao
  • , Jingang Jia
  • , Ningwei Zhan
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

11 Citations (Scopus)

Abstract

In this study, femtosecond laser double pulses were tested to improve their nickel ablation efficiency. The experimental results indicated that compared with single pulses, double pulses with different delay times generated craters with larger diameters and depths. The results obtained for three sets of double pulses with different energy ratios indicated that double pulses with an energy ratio of 1:9 had the highest ablation efficiency, followed by those with energy ratios of 2:8 and 5:5. The double pulses with the aforementioned three energy ratios achieved the maximum ablation efficiency when the delay time was 3–4 ps. Compared with single pulses, double pulses with an energy ratio of 1:9 generated craters with an up to 34% greater depth and up to 14% larger diameter. In addition, an interference effect was observed with a double pulse delay time of 0 ps, which has seldom been reported in the literature. The double pulses were simulated using the two-temperature model. The simulation results indicated that double pulses with an energy ratio of 1:9 with a delay time of 4 ps can perform the strongest ablation. These simulation results are in line with the experimental results.

Original languageEnglish
Article number6355
JournalMaterials
Volume14
Issue number21
DOIs
Publication statusPublished - 1 Nov 2021

Keywords

  • Double pulses
  • Femtosecond laser
  • Nickel
  • Two-temperature model

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