Research on the fabrication of high-quality patterned diamond using femtosecond laser
2024年9月6日·,,,,
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0 分钟阅读时长
Junjie Zou
Corresponding
,Qijun Wang
Wei Shen
Sheng Peng
Zijun Qi
Gai Wu
曹强
Sheng Liu

摘要
Diamond, known for its exceptional thermal, electrical, and mechanical properties, is widely used in precision machining tools, MEMS, and electronic devices. However, because of its extreme hardness and chemical inertness, diamond machining is highly challenging. Femtosecond laser technology, with its high instantaneous energy and minimal heat-affected zone, has emerged as an effective method for the precision machining of diamond. This study explores the application of 1026 nm and 513 nm femtosecond lasers in diamond grooving. The experimental results indicate that with increasing laser energy density, both groove width and depth increase, accompanied by a rise in amorphous carbon and graphite contents, resulting in increased tensile stress and decreased crystallinity in the machined region. Notably, the 513 nm laser demonstrates higher precision, achieving narrower grooves suitable for fine machining of diamond. Molecular dynamics simulations and experimental data reveal that the formation of amorphous carbon and graphite phases is the primary mechanism for deep ablation, and no significant anisotropy is observed during the process, allowing for the uniform fabrication of micro-nanostructures. TEM analysis confirms the presence of amorphous carbon and nanocrystalline diamond at the groove bottom, indicating phase transformation and also the formation of nanoscale diamond particles in regions of concentrated femtosecond laser energy. This study provides experimental and theoretical support for the high-quality fabrication of micro-nano structures on diamond, with significant implications for its advanced applications.
类型
出版物
Diamond and Related Materials
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教授
教授、博导,泰山学者青年专家、崂山学者、学科带头人及武汉大学兼职教授。先后任职于北京理工大学、南洋理工大学、武汉大学及青岛科技大学。他长期致力于超快激光与物质相互作用研究,提出基于共振吸收的飞秒激光高效选择性加工新方法,成功应用于光子晶体加工、油水分离器制造等领域,展现出极高的工业加工能力;同时,成功验证了飞秒激光海水制氢假设,为万亿美元级的大规模制氢工程化奠定了实验基础。其科研成果丰硕,在Nanoscale、APL等主流SCI期刊发表论文40余篇,总被引超1100次;获国家发明专利18项(多项正推进转化)。主持国自然面上项目、先导科技专项子课题等16项,并作为骨干参与多项国家重大科研计划。
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