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液体中脉冲激光烧蚀制备石墨烯纳米结构综述

Graphene Nanostructures by Pulsed Laser Ablation in Liquids: A Review.

作者信息

Altuwirqi Reem M

机构信息

Physics Department, Faculty of Science, King Abdulaziz University, P.O. Box 42805, Jeddah 21551, Saudi Arabia.

出版信息

Materials (Basel). 2022 Aug 27;15(17):5925. doi: 10.3390/ma15175925.

Abstract

High-quality graphene has demonstrated remarkable mechanical, thermal, electronic, and optical properties. These features have paved the road for the introduction of graphene into numerous applications such as optoelectronics and energy devices, photodegradation, bioimaging, photodetectors, sensors, and biosensors. Due to this, graphene research has accelerated exponentially, with the aim of reaching a sustainable large-scale production process of high-quality graphene that can produce graphene-based technologies at an industrial scale. There exist numerous routes for graphene fabrication; however, pulsed laser ablation in liquids (PLAL) has emerged as a simple, fast, green, and environmentally friendly method as it does not require the use of toxic chemicals. Moreover, it does not involve the use of expensive vacuum chambers or clean rooms. However, the great advantage of PLAL is its ability to control the size, shape, and structure of the produced nanostructures through the choice of laser parameters and liquid used. Consequently, this review will focus on recent research on the synthesis of graphene nanosheets and graphene quantum dots via PLAL and the effect of experimental parameters such as laser wavelength, pulse width, pulse energy, repetition rate, irradiation time, and liquid media on the produced nanostructures. Moreover, it will discuss extended PLAL techniques which incorporate other methods into PLAL. Finally, different applications that utilize nanostructures produced by PLAL will be highlighted. We hope that this review will provide a useful guide for researchers to further develop the PLAL technique and the fabrication of graphene-based materials.

摘要

高质量石墨烯已展现出卓越的机械、热、电子和光学性能。这些特性为将石墨烯引入众多应用领域铺平了道路,如光电子学和能源器件、光降解、生物成像、光电探测器、传感器及生物传感器等。正因如此,石墨烯研究呈指数级加速发展,目标是实现高质量石墨烯的可持续大规模生产工艺,从而能够在工业规模上生产基于石墨烯的技术。石墨烯制备存在多种途径;然而,液相脉冲激光烧蚀(PLAL)已成为一种简单、快速、绿色且环保的方法,因为它无需使用有毒化学物质。此外,它不涉及使用昂贵的真空腔室或洁净室。然而,PLAL的巨大优势在于其能够通过选择激光参数和所用液体来控制所制备纳米结构的尺寸、形状和结构。因此,本综述将聚焦于近期通过PLAL合成石墨烯纳米片和石墨烯量子点的研究,以及诸如激光波长、脉冲宽度、脉冲能量、重复频率、辐照时间和液体介质等实验参数对所制备纳米结构的影响。此外,还将讨论将其他方法纳入PLAL的扩展PLAL技术。最后,将重点介绍利用PLAL制备的纳米结构的不同应用。我们希望本综述能为研究人员进一步发展PLAL技术及制备基于石墨烯的材料提供有益指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5503/9456608/1f04cb0b6c44/materials-15-05925-g002.jpg

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