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不同工艺参数下飞秒激光刻槽对非均质绿片岩的表面微观结构响应

Surface Microstructural Responses of Heterogeneous Green Schist to Femtosecond Laser Grooving with Varying Process Parameters.

作者信息

Wang Chengaonan, Li Kai, Jia Xianshi, Wang Cong, Wang Yansong, Yuan Zheng

机构信息

Wuhan University, Wuhan 430072, China.

State Key Laboratory of Precision Manufacturing for Extreme Service Performance, College of Mechanical and Electrical Engineering, Central South University, Changsha 410083, China.

出版信息

Materials (Basel). 2025 Aug 11;18(16):3751. doi: 10.3390/ma18163751.

Abstract

The Mount Wudang architectural complex, recognized as a UNESCO World Cultural Heritage site, extensively utilizes green schist as the building material in its rock temple structures. Due to prolonged exposure to weathering and moisture, effective surface protection of these stones is crucial for their preservation. Inspired by the lotus leaf, femtosecond laser fabrication of bioinspired micro/nanostructures offers a promising approach for imparting hydrophobicity to stone surfaces. However, green schist is a typical heterogeneous material primarily composed of quartz, chlorite, and muscovite, and it contains metal elements, such as Fe and Ni. These pronounced compositional differences complicate laser-material interactions, posing considerable challenges to the formation of stable and uniform micro/nanostructures. To address this issue, we performed systematic femtosecond laser scanning experiments on green schist surfaces using a 100 kHz, 40 μJ laser with a 30 μm spot diameter, fabricating microgrooves under various process conditions. Surface morphology and EDS mapping analyses were conducted to elucidate the ablation responses of quartz, chlorite, and muscovite under different groove spacings (100 μm, 80 μm, 60 μm, and 40 μm) and scan repetitions (1, 2, 4, 6, 8, 10). The results revealed distinct differences in energy absorption, material ejection, and surface reorganization among these minerals, significantly influencing the formation mechanisms of laser-induced structures. Based on optimized parameters (60 μm spacing, 2-6 passes), robust and repeatable micro/nanostructures were successfully produced, yielding superhydrophobic performance with contact angles exceeding 155°. This work offers a novel strategy for interface control in heterogeneous natural stone materials and provides a theoretical and technical foundation for the protection and functional modification of green schist in heritage conservation.

摘要

武当山古建筑群被联合国教科文组织认定为世界文化遗产,其石质庙宇建筑大量使用绿片岩作为建筑材料。由于长期暴露于风化和潮湿环境中,对这些石材进行有效的表面防护对其保存至关重要。受荷叶启发,利用飞秒激光制备仿生微纳结构为赋予石材表面疏水性提供了一种有前景的方法。然而,绿片岩是一种典型的多相材料,主要由石英、绿泥石和白云母组成,且含有铁、镍等金属元素。这些显著的成分差异使激光与材料的相互作用变得复杂,给稳定且均匀的微纳结构的形成带来了巨大挑战。为解决这一问题,我们使用光斑直径为30μm、频率为100kHz、能量为40μJ的激光,对绿片岩表面进行了系统的飞秒激光扫描实验,在不同工艺条件下制备微槽。通过表面形貌和能谱分析(EDS mapping),研究了不同槽间距(100μm、80μm、60μm和40μm)和扫描次数(1、2、4、6、8、10)下石英、绿泥石和白云母的烧蚀响应。结果表明,这些矿物在能量吸收、材料喷射和表面重组方面存在明显差异,对激光诱导结构的形成机制有显著影响。基于优化参数(60μm间距,2 - 6次扫描),成功制备出坚固且可重复的微纳结构,实现了接触角超过155°的超疏水性能。这项工作为多相天然石材材料的界面控制提供了一种新策略,为遗产保护中绿片岩的保护和功能改性提供了理论和技术基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9577/12387500/d1e89440f0d7/materials-18-03751-g001.jpg

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