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用于先进材料与器件的微等离子体

Microplasmas for Advanced Materials and Devices.

作者信息

Chiang Wei-Hung, Mariotti Davide, Sankaran R Mohan, Eden J Gary, Ostrikov Kostya Ken

机构信息

Department of Chemical Engineering, National Taiwan University of Science and Technology, Taipei, 10607, Taiwan.

Nanotechnology & Integrated Bio-Engineering Centre (NIBEC), Ulster University, Shore Road, Newtownabbey, BT37 0QB, UK.

出版信息

Adv Mater. 2020 May;32(18):e1905508. doi: 10.1002/adma.201905508. Epub 2019 Dec 18.

Abstract

Microplasmas are low-temperature plasmas that feature microscale dimensions and a unique high-energy-density and a nonequilibrium reactive environment, which makes them promising for the fabrication of advanced nanomaterials and devices for diverse applications. Here, recent microplasma applications are examined, spanning from high-throughput, printing-technology-compatible synthesis of nanocrystalline particles of common materials types, to water purification and optoelectronic devices. Microplasmas combined with gaseous and/or liquid media at low temperatures and atmospheric pressure open new ways to form advanced functional materials and devices. Specific examples include gas-phase, substrate-free, plasma-liquid, and surface-supported synthesis of metallic, semiconducting, metal oxide, and carbon-based nanomaterials. Representative applications of microplasmas of particular importance to materials science and technology include light sources for multipurpose, efficient VUV/UV light sources for photochemical materials processing and spectroscopic materials analysis, surface disinfection, water purification, active electromagnetic devices based on artificial microplasma optical materials, and other devices and systems including the plasma transistor. The current limitations and future opportunities for microplasma applications in materials related fields are highlighted.

摘要

微等离子体是一种低温等离子体,具有微观尺度尺寸、独特的高能量密度和非平衡反应环境,这使得它们在制造用于各种应用的先进纳米材料和器件方面具有广阔前景。在此,我们考察了微等离子体最近的应用,范围从与高通量、印刷技术兼容的常见材料类型的纳米晶体颗粒合成,到水净化和光电器件。微等离子体在低温和大气压下与气态和/或液态介质相结合,为形成先进功能材料和器件开辟了新途径。具体例子包括金属、半导体、金属氧化物和碳基纳米材料的气相、无基底、等离子体-液体和表面支撑合成。对材料科学和技术特别重要的微等离子体的代表性应用包括用于多种用途的光源、用于光化学材料加工和光谱材料分析的高效真空紫外/紫外光源、表面消毒、水净化、基于人工微等离子体光学材料的有源电磁器件,以及包括等离子体晶体管在内的其他器件和系统。文中强调了微等离子体在材料相关领域应用的当前局限性和未来机遇。

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