Near‐Field‐Regulated Ultrafast Laser Supra‐Wavelength Structuring Directly on Ultrahard Metallic Glasses

Author:

Huang Hanxuan1,Song Shijie23,Liu Yun1,Liu Zhenyu23,Xiao Zifeng1,Li Yanyang1,Wang Yi4,Li Ruifan5,Zhao Qianru6,Wang Xudong6,Chen Yu7,Wang Lei5,Hou Zhishan8,Zhang Peilei23ORCID,Sun Yun‐Lu1ORCID

Affiliation:

1. School of Information Science and Technology Fudan University Shanghai 200433 China

2. School of Materials Engineering Shanghai University of Engineering Science Shanghai 201620 China

3. Shanghai Collaborative Innovation Center of Laser of Manufacturing Technology Shanghai 201620 China

4. State Key Laboratory of Precision Measurement Technology and Instruments Department of Precision Instrument Tsinghua University Beijing 100084 China

5. State Key Laboratory of Integrated Optoelectronics College of Electronic Science and Engineering Jilin University Changchun 130012 China

6. State Key Laboratory of Infrared Physics Shanghai Institute of Technical Physics Chinese Academy of Sciences 500 Yu Tian Road Shanghai 200083 China

7. Amplitude (Shanghai) Laser Technology Co., Ltd. Suzhou Jiangsu 215123 China

8. International Science and Technology Cooperation Base for Laser Processing Robot Zhejiang Provincial Key Laboratory of Laser Processing Robot Wenzhou University Wenzhou 325035 China

Abstract

AbstractThe ultrafast‐laser‐matter interactions enable “top‐down” laser surface structuring, especially for materials difficult to process, with “bottom‐up” self‐organizing features. The subwavelength scenarios of laser‐induced structuring are improved in defects and long‐range order by applying positive/negative feedbacks. It is still hardly reported for supra‐wavelength laser structuring more associated with complicated thermo/hydro‐dynamics. For the first time to the knowledge, the near‐field‐regulated ultrafast‐laser lithography of self‐arrayed supra‐wavelength micro/nano‐pores directly on ultra‐hard metallic glass is developed here. The plasmonic hot spots on pre‐structures, as the positive feedback, clamped the lateral geometries (i.e., position, size). Simultaneously, it drilled and self‐organized into micro/nano‐pore arrays by photo‐dynamic plasma ablation and Marangoni removal confined under specific femtosecond‐laser irradiation, as the negative feedback. The mechanisms and finite element modeling of the multi‐physical transduction (based on the two‐temperature model), the far‐field/near‐field coupling, and the polarization dependence during laser‐matter interactions are studied. Large‐area micro/nano‐pore arrays (centimeter scale or larger)  are manufactured with tunable periods (1–5 µm) and geometries (e.g., diameters of 500 nm–6 µm using 343, 515, and 1030 lasers, respectively). Consequently, the mid/far‐infrared reflectivity at 2.5–6.5 µm iss decreased from ≈80% to ≈5%. The universality of multi‐physical coupling and near‐field enhancements makes this approach widely applicable, or even irreplaceable, in various applications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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