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氧化石墨烯的光致发光与荧光猝灭:综述

Photoluminescence and Fluorescence Quenching of Graphene Oxide: A Review.

作者信息

Xiao Xinzhe, Zhang Yumin, Zhou Lei, Li Bin, Gu Lin

机构信息

School of Chemical Engineering and Technology, Sun Yat-Sen University, Zhuhai 519082, China.

出版信息

Nanomaterials (Basel). 2022 Jul 17;12(14):2444. doi: 10.3390/nano12142444.

Abstract

In recent decades, photoluminescence (PL) material with excellent optical properties has been a hot topic. Graphene oxide (GO) is an excellent candidate for PL material because of its unique optical properties, compared to pure graphene. The existence of an internal band gap in GO can enrich its optical properties significantly. Therefore, GO has been widely applied in many fields such as material science, biomedicine, anti-counterfeiting, and so on. Over the past decade, GO and quantum dots (GOQDs) have attracted the attention of many researchers as luminescence materials, but their luminescence mechanism is still ambiguous, although some theoretical results have been achieved. In addition, GO and GOQDs have fluorescence quenching properties, which can be used in medical imaging and biosensors. In this review, we outline the recent work on the photoluminescence phenomena and quenching process of GO and GOQDs. First, the PL mechanisms of GO are discussed in depth. Second, the fluorescence quenching mechanism and regulation of GO are introduced. Following that, the applications of PL and fluorescence quenching of GO-including biomedicine, electronic devices, material imaging-are addressed. Finally, future development of PL and fluorescence quenching of GO is proposed, and the challenges exploring the optical properties of GO are summarized.

摘要

近几十年来,具有优异光学性能的光致发光(PL)材料一直是一个热门话题。与纯石墨烯相比,氧化石墨烯(GO)因其独特的光学性能而成为PL材料的极佳候选者。GO内部带隙的存在可显著丰富其光学性能。因此,GO已广泛应用于材料科学、生物医学、防伪等许多领域。在过去十年中,GO和量子点(GOQDs)作为发光材料引起了许多研究人员的关注,但其发光机制仍不明确,尽管已经取得了一些理论成果。此外,GO和GOQDs具有荧光猝灭特性,可用于医学成像和生物传感器。在这篇综述中,我们概述了关于GO和GOQDs光致发光现象及猝灭过程的最新研究工作。首先,深入讨论了GO的PL机制。其次,介绍了GO的荧光猝灭机制及其调控。随后,阐述了GO的PL和荧光猝灭在生物医学、电子器件、材料成像等方面的应用。最后,提出了GO的PL和荧光猝灭的未来发展方向,并总结了探索GO光学性能所面临的挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d34/9319665/023cb77aa95c/nanomaterials-12-02444-g001.jpg

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