Ju Wang, Qiang Zhou, Jianbing Li, Junwen Zheng, Mengjie Lv, Wei Liu, Ping Li
Titanium, with its essential applications in aerospace and biomedical engineering, poses significant challenges for precision surface structuring due to its high corrosion resistance and high-temperature stability. This study addresses micrometer-scale surface patterning requirements for titanium through systematic investigation of high-repetition-rate femtosecond laser machining. As the laser repetition rate increases from 100 kHz to 1 MHz, the ablation threshold decreases by a factor of two, accompanied by a substantial expansion of heat affected zone. At fixed laser parameters, higher scanning speeds enhance the machining depth with negligible degradation of the quality. Theoretical analysis based on the two-temperature model reveal the influence of repetition rate on ablation threshold, demonstrating an effective heat accumulation with roughly 10 mJ/cm 2 @1 MHz laser injections. This research advances the understanding of the interaction mechanisms between titanium and high-repetition-rate femtosecond laser, thus providing valuable insights for the developing of high-precision surface processing techniques for titanium-based materials.