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石墨烯量子点固体薄片:具有强蓝光发射和光电流产生的带隙开启纳米结构。

Graphene Quantum Dot Solid Sheets: Strong blue-light-emitting & photocurrent-producing band-gap-opened nanostructures.

机构信息

Low Dimensional Materials Laboratory, Department of Physics, Bharathiar University, Coimbatore, TN, India.

Centre for Advanced Studies in Physics for the development of Solar Energy Materials and Devices, Department of Physics, Bharathiar University, Coimbatore, TN, India.

出版信息

Sci Rep. 2017 Sep 7;7(1):10850. doi: 10.1038/s41598-017-10534-4.

Abstract

Graphene has been studied intensively in opto-electronics, and its transport properties are well established. However, efforts to induce intrinsic optical properties are still in progress. Herein, we report the production of micron-sized sheets by interconnecting graphene quantum dots (GQDs), which are termed 'GQD solid sheets', with intrinsic absorption and emission properties. Since a GQD solid sheet is an interconnected QD system, it possesses the optical properties of GQDs. Metal atoms that interconnect the GQDs in the bottom-up hydrothermal growth process, induce the semiconducting behaviour in the GQD solid sheets. X-ray absorption measurements and quantum chemical calculations provide clear evidence for the metal-mediated growth process. The as-grown graphene quantum dot solids undergo a Forster Resonance Energy Transfer (FRET) interaction with GQDs to exhibit an unconventional 36% photoluminescence (PL) quantum yield in the blue region at 440 nm. A high-magnitude photocurrent was also induced in graphene quantum dot solid sheets by the energy transfer process.

摘要

石墨烯在光电子学领域得到了广泛研究,其输运性质已得到充分证实。然而,诱导其本征光学性质的努力仍在进行中。在此,我们报道了通过连接石墨烯量子点(GQDs)来制备具有本征吸收和发射性质的微米级薄片的方法,这些薄片被称为“GQD 固体薄片”。由于 GQD 固体薄片是一个相互连接的量子点系统,因此它具有 GQDs 的光学性质。在自下而上的水热生长过程中,连接 GQDs 的金属原子诱导 GQD 固体薄片表现出半导体行为。X 射线吸收测量和量子化学计算为金属介导的生长过程提供了明确的证据。所生长的石墨烯量子点固体通过Förster 共振能量转移(FRET)相互作用与 GQDs 相互作用,在 440nm 处的蓝色区域表现出非传统的 36%的光致发光(PL)量子产率。通过能量转移过程,在石墨烯量子点固体薄片中也诱导出了高幅度的光电流。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69ed/5589879/82c0736ee667/41598_2017_10534_Fig1_HTML.jpg

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