用于摩擦学的类金刚石碳薄膜激光表面结构技术

IF 4.3 3区 材料科学 Q2 MATERIALS SCIENCE, COATINGS & FILMS Diamond and Related Materials Pub Date : 2024-08-02 DOI:10.1016/j.diamond.2024.111462
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引用次数: 0

摘要

本文概述了对各种类金刚石碳薄膜(a-C:H、ta-C、DLN、金属掺杂 DLN)进行直接激光加工和表面微结构(纹理)的实验结果,旨在改善其摩擦学和纳米结构特性。纳秒紫外线和飞秒红外/可见光脉冲激光被应用于薄膜的微加工,重点是利用 fs 激光脉冲进行高精度表面结构加工。研究主要集中在以下几个方面:(i) 不同辐照条件下激光微结构薄膜的表面石墨化;(ii) 使用紫外 ns 和可见 fs 脉冲激光微图案化 DLN 薄膜的润滑摩擦性能;(iii) 使用接触模式原子力显微镜检测激光结构 DLN 和金属掺杂 DLN 薄膜的纳米级摩擦性能。我们研究的重要发现与在 DLN 薄膜上制作高精度微槽/微坑图案以及在宏观、微观和纳米尺度上改善激光结构薄膜的摩擦特性有关。表面微结构改善了薄膜在油润滑滑动条件下的性能,这与微结构的几何参数(尺寸、深度、周期)和环境温度有关。研究表明,激光结构薄膜的纳米级摩擦行为受表面石墨化、纳米级粗糙度、毛细管力和摩擦力成像过程中原子力显微镜尖端磨损的控制。
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Laser surface structuring of diamond-like carbon films for tribology

The paper overviews experimental findings of the direct laser processing and surface microstructuring (texturing) of various diamond-like carbon films (a-C:H, ta-C, DLN, metal-doped DLN), aimed at improvements of their tribological and nanotribological properties. The nanosecond UV and femtosecond IR/visible pulsed lasers were applied in microprocessing of the films, focusing on high precision surface structuring with fs-laser pulses. The studies were concentrated on the following tasks: (i) surface graphitization in laser microstructuring of the films under different irradiation conditions, (ii) lubricated friction performance of DLN films micropatterned with UV ns and visible fs pulsed lasers, and (iii) nanoscale friction of laser-structured DLN and metal-doped DLN films examined with contact-mode atomic force microscopy. The important findings of our studies are related to fabrication of highly-precise microgroove/microcrater patterns on DLN films and improvements of frictional properties of the laser-structured films at the macro, micro and nanoscale. The surface microstructures improved the film properties under oil-lubricated sliding in dependence on their geometrical parameters (size, depth, period) and ambient temperature. The nanoscale friction behavior of laser-structured films was shown to be controlled by the surface graphitization, nanoscale roughness, capillary forces and wear of AFM tips during friction force imaging.

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来源期刊
Diamond and Related Materials
Diamond and Related Materials 工程技术-材料科学:综合
CiteScore
6.00
自引率
14.60%
发文量
702
审稿时长
2.1 months
期刊介绍: DRM is a leading international journal that publishes new fundamental and applied research on all forms of diamond, the integration of diamond with other advanced materials and development of technologies exploiting diamond. The synthesis, characterization and processing of single crystal diamond, polycrystalline films, nanodiamond powders and heterostructures with other advanced materials are encouraged topics for technical and review articles. In addition to diamond, the journal publishes manuscripts on the synthesis, characterization and application of other related materials including diamond-like carbons, carbon nanotubes, graphene, and boron and carbon nitrides. Articles are sought on the chemical functionalization of diamond and related materials as well as their use in electrochemistry, energy storage and conversion, chemical and biological sensing, imaging, thermal management, photonic and quantum applications, electron emission and electronic devices. The International Conference on Diamond and Carbon Materials has evolved into the largest and most well attended forum in the field of diamond, providing a forum to showcase the latest results in the science and technology of diamond and other carbon materials such as carbon nanotubes, graphene, and diamond-like carbon. Run annually in association with Diamond and Related Materials the conference provides junior and established researchers the opportunity to exchange the latest results ranging from fundamental physical and chemical concepts to applied research focusing on the next generation carbon-based devices.
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