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Unveiling the Mechanisms Leading to the 'Green' Synthesis of Metal Oxide Quantum Dots By Plasma Induced Non-Equilibrium Electrochemistry (PINE)

机译:通过等离子体诱导的非平衡电化学(松)揭示导致“绿色”合成金属氧化物量子点的机制(松树)

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The synthesis of a range of metal oxide quantum dots (QDs) has been demonstrated in the past few years utilizing plasma-induced non-equilibrium electrochemistry (PiNE). These reports have also shown important features of these QDs with benefits for energy and other applications. The synthesis process has shown a generalized approach for metal oxide QDs that include Cu, Mo, Zn, Ni, Mn and Co. In this contribution we will first overview the opportunities offered by this technique for metal oxides. We will then report on an in-depth investigation to understand the mechanisms and reaction pathways leading to the formation of QDs. This will be mainly based on the synthesis of CuO QDs (< 5 nm diameter), however we will also attempt to extrapolate our findings to understand the synthesis of other metal oxides, highlighting any differences. In particular, we carried out extensive characterization of both the QDs as well as the electrolyte. In addition to materials characterization techniques, we used Fourier transform infra-red spectroscopy (FTIR), ultraviolet-visible (UV-Vis) spectroscopy, nuclear magnetic resonance (NMR) spectroscopy and gas chromatography-mass (GC-MS) spectroscopy. Further, measurements for pH and other trace products were also carried out as well as optical emission spectroscopy. Overall our work discloses important general aspects of plasma-liquid interactions, in particular when ethanol is used. The specific synthesis of CuO QDs follows a 'green' synthesis cycle that only produces water as by-product with traces of hydrogen peroxide and isopropanol.
机译:在过去几年中,使用等离子体诱导的非平衡电化学(松树),已经证明了一系列金属氧化物量子点(QDS)的合成。这些报告还显示了这些QD的重要特征,具有能源和其他应用的益处。合成方法已经示出了包括Cu,Mo,Zn,Ni,Mn和Co.的金属氧化物QD的广义方法,我们将首先概述该技术提供金属氧化物的机会。然后,我们将报告深入调查,以了解导致QDS形成的机制和反应途径。这将主要基于CuO QDS(直径<5nm)的合成,但我们还将试图推断我们的研究结果以了解其他金属氧化物的合成,突出任何差异。特别是,我们对QD和电解质的广泛表征进行了广泛的表征。除了材料表征技术之外,我们使用傅立叶变换红外光谱(FTIR),紫外 - 可见(UV-VIS)光谱,核磁共振(NMR)光谱和气相色谱 - 质量(GC-MS)光谱。此外,还进行了对pH和其他微量产物的测量以及光学发射光谱。背景之利,我们的作品公开了血浆 - 液相相互作用的重要一般方面,特别是当使用乙醇时。 CuO QD的具体合成遵循“绿色”合成循环,仅生产与过氧化氢痕量和异丙醇的副产物的水。

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