Laser Technologies Group, Energy Technologies Area, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.
Laser Thermal Laboratory, Department of Mechanical Engineering, University of California at Berkeley, Berkeley, CA 94720-1740, USA.
Sci Adv. 2023 Mar 22;9(12):eadf6397. doi: 10.1126/sciadv.adf6397.
Gigahertz (GHz) femtosecond (fs) lasers have opened possibilities for enhancing and controlling the laser machining quality to engineer the physicochemical properties of materials. However, fundamental understanding of laser-material interactions by GHz fs laser has remained unsolved due to the complexity of associated ablation dynamics. Here, we study the ablation dynamics of copper (Cu) by GHz fs bursts using in situ multimodal diagnostics, time-resolved scattering imaging, emission imaging, and emission spectroscopy. A combination of probing techniques reveals that GHz fs bursts rapidly remove molten Cu from the irradiated spot due to the recoil pressure exerted by following fs pulses. Material ejection essentially stops right after the burst irradiation due to the limited amount of remnant matter, combined with the suppressed heat conduction into the target material. Our work provides insights into the complex ablation mechanisms incurred by GHz fs bursts, which are critical in selecting optimal laser conditions in cross-cutting processing, micro/nano-fabrication, and spectroscopy applications.
吉赫兹(GHz)飞秒(fs)激光为增强和控制激光加工质量以工程材料的物理化学性质开辟了可能性。然而,由于相关烧蚀动力学的复杂性,GHz fs 激光的激光与材料相互作用的基本理解仍然未得到解决。在这里,我们使用原位多模态诊断、时间分辨散射成像、发射成像和发射光谱法研究了铜(Cu)的烧蚀动力学。探测技术的组合表明,由于后续 fs 脉冲施加的反冲压力,GHz fs 脉冲迅速将熔化的 Cu 从辐照点去除。由于残余物质的数量有限,再加上抑制了向目标材料的热传导,材料的喷射基本上在爆光后立即停止。我们的工作深入了解了 GHz fs 脉冲引起的复杂烧蚀机制,这对于在交叉切割加工、微纳加工和光谱学应用中选择最佳激光条件至关重要。