Structuring and functionalization of non‐metallic materials using direct laser interference patterning: a review
Структурирование и функционализация неметаллических материалов с использованием прямой лазерной интерференционной записи: обзор
2021-12-06
SCID: 54.1/ycufkd4w
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Direct laser interference patterningLaser–matter interactionNon-metallic materialsPeriodic surface texturesSurface functionalization
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Abstract (AI)
Direct laser interference patterning (DLIP) is a laser-based surface structuring method that stands out for its high throughput, flexibility and resolution for laboratory and industrial manufacturing. This top-down technique relies on the formation of an interference pattern by overlapping multiple laser beams onto the sample surface and thus producing a periodic texture by melting and/or ablating the material. Driven by the large industrial sectors, DLIP has been extensively used in the last decades to functionalize metallic surfaces, such as steel, aluminium, copper or nickel. Even so, DLIP processing of non-metallic materials has been gaining popularity in promising fields such as photonics, optoelectronics, nanotechnology and biomedicine. This review aims to comprehensively collect the main findings of DLIP structuring of polymers, ceramics, composites, semiconductors and other non-metals and outline their most relevant results. This contribution also presents the mechanisms by which laser radiation interacts with non-metallic materials in the DLIP process and summarizes the developed surface functions and their applications in different fields.
Key Findings
1
Although historically focused on metals, DLIP processing of non-metallic materials is increasingly important for photonics, optoelectronics, nanotechnology, and biomedicine.
2
DLIP produces textures on materials by laser-induced melting and/or ablation, depending on material and processing conditions.
3
Direct laser interference patterning enables high-throughput, flexible, and high-resolution periodic surface structuring through overlapping laser beams.
4
The review consolidates DLIP structuring results for polymers, ceramics, composites, semiconductors, and other non-metallic materials.
5
The review summarizes laser–material interaction mechanisms, resulting surface functions, and applications of structured non-metallic surfaces.
Research Object
Non-metallic materials, including polymers, ceramics, composites, semiconductors, and other non-metals, processed by direct laser interference patterning
Research Subject
DLIP-induced surface structuring and functionalization, including laser–material interaction mechanisms, periodic texture formation, developed surface functions, and applications
Publication Details
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2021-12-06
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