Miaoyan Hu , Peipei Zhang , Taohong Li , Kai Liu , Hailan Lian , Changyan Xu
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引用次数: 0
Abstract
Hydrothermal method became the main preparation method of the biomass carbon quantum dots (CQDs) by virtue of its strong operability and eco-friendliness. However, due to the differences of carbon precursors’ composition and the lack of statistical analysis of data in the synthesis process, hydrothermal synthesis process optimization was seriously insufficient, which had become the bottleneck of high − quality preparation and application of biomass CQDs. In this paper, the response surface methodology (RSM) was applied to optimize the hydrothermal synthesis process of Lophatherum gracile-based CQDs, so as to regulate the CQDs’ structure and properties by simply changing the synthesis parameters. In addition, the formation mechanism and fluorescence mechanism of the CQDs were interpreted by Materials Studio (MS) and density functional theory (DFT); and the morphology, FTIR spectrum, XPS spectrum, Zeta potential, fluorescence spectrum, UV–Vis absorption spectrum and fluorescence lifetime of the target CQDs were used to verify the interpretation. In coumarin parent nucleus, by introducing strong electron-donating groups such as amino and hydroxyl groups at C6&C7 and electron-withdrawing groups such as siloxy and aldehyde groups at C3&C4, the whole molecule formed a push–pull electron system, thus enhancing excitation-dependent fluorescence of CQDs. Finally, based on the good water solubility, fluorescence excitation dependence and fluorescence stability of the target CQDs, it was proved that the Lophatherum gracile-based CQDs had great application potential in fluorescence anti-counterfeiting. This study provided a new way for the high-value utilization of Lophatherum gracile.
期刊介绍:
JPPA publishes the results of fundamental studies on all aspects of chemical phenomena induced by interactions between light and molecules/matter of all kinds.
All systems capable of being described at the molecular or integrated multimolecular level are appropriate for the journal. This includes all molecular chemical species as well as biomolecular, supramolecular, polymer and other macromolecular systems, as well as solid state photochemistry. In addition, the journal publishes studies of semiconductor and other photoactive organic and inorganic materials, photocatalysis (organic, inorganic, supramolecular and superconductor).
The scope includes condensed and gas phase photochemistry, as well as synchrotron radiation chemistry. A broad range of processes and techniques in photochemistry are covered such as light induced energy, electron and proton transfer; nonlinear photochemical behavior; mechanistic investigation of photochemical reactions and identification of the products of photochemical reactions; quantum yield determinations and measurements of rate constants for primary and secondary photochemical processes; steady-state and time-resolved emission, ultrafast spectroscopic methods, single molecule spectroscopy, time resolved X-ray diffraction, luminescence microscopy, and scattering spectroscopy applied to photochemistry. Papers in emerging and applied areas such as luminescent sensors, electroluminescence, solar energy conversion, atmospheric photochemistry, environmental remediation, and related photocatalytic chemistry are also welcome.