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从生物质废料中高产合成石墨烯量子点作为 Fe 传感的高选择性探针。

High yield synthesis of graphene quantum dots from biomass waste as a highly selective probe for Fe sensing.

机构信息

School of Engineering, Newcastle University, Newcastle upon Tyne, NE1 7RU, UK.

UCL Cancer Institute, University College London, London, WC1E 6DD, UK.

出版信息

Sci Rep. 2020 Dec 4;10(1):21262. doi: 10.1038/s41598-020-78070-2.

Abstract

Graphene quantum dots (GQDs), a novel type of zero-dimensional fluorescent materials, have gained considerable attention owing to their unique optical properties, size and quantum confinement. However, their high cost and low yield remain open challenges for practical applications. In this work, a low cost, green and renewable biomass resource is utilised for the high yield synthesis of GQDs via microwave treatment. The synthesis approach involves oxidative cutting of short range ordered carbon derived from pyrolysis of biomass waste. The GQDs are successfully synthesised with a high yield of over 84%, the highest value reported to date for biomass derived GQDs. As prepared GQDs are highly hydrophilic and exhibit unique excitation independent photoluminescence emission, attributed to their single-emission fluorescence centre. As prepared GQDs are further modified by simple hydrothermal treatment and exhibit pronounced optical properties with a high quantum yield of 0.23. These modified GQDs are used for the highly selective and sensitive sensing of ferric ions (Fe). A sensitive sensor is prepared for the selective detection of Fe ions with a detection limit of as low as 2.5 × 10 M. The utilisation of renewable resource along with facile microwave treatment paves the way to sustainable, high yield and cost-effective synthesis of GQDs for practical applications.

摘要

石墨烯量子点(GQDs)是一种新型的零维荧光材料,由于其独特的光学性质、尺寸和量子限制,引起了人们的广泛关注。然而,其高成本和低产量仍然是实际应用中的开放性挑战。在这项工作中,利用低成本、绿色和可再生的生物质资源,通过微波处理来高产率合成 GQDs。该合成方法涉及从生物质废物热解中产生的短程有序碳的氧化切割。成功地以超过 84%的高产率合成了 GQDs,这是迄今为止报道的生物质衍生 GQDs 中最高的值。所制备的 GQDs 具有很高的亲水性,并表现出独特的激发独立光致发光发射,这归因于它们的单发射荧光中心。所制备的 GQDs 进一步通过简单的水热处理进行修饰,并表现出明显的光学性质,量子产率高达 0.23。这些修饰后的 GQDs 用于铁离子(Fe)的高选择性和灵敏检测。制备了一种灵敏的传感器,用于选择性检测 Fe 离子,检测限低至 2.5×10 -6 M。可再生资源的利用以及简便的微波处理为实际应用中 GQDs 的可持续、高产率和具有成本效益的合成铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26fa/7718218/a5b650a6e158/41598_2020_78070_Fig1_HTML.jpg

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