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首页> 外文期刊>Ultrasonics sonochemistry >Ultrasound assisted reduction of graphene oxide to graphene in L-ascorbic acid aqueous solutions: Kinetics and effects of various factors on the rate of graphene formation
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Ultrasound assisted reduction of graphene oxide to graphene in L-ascorbic acid aqueous solutions: Kinetics and effects of various factors on the rate of graphene formation

机译:超声辅助在L-抗坏血酸水溶液中将氧化石墨烯还原为石墨烯:动力学和各种因素对石墨烯形成速率的影响

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摘要

The reduction of graphene oxide (GO) to graphene (rGO) was achieved by using 20 kHz ultrasound in L-ascorbic acid (L-AA, reducing agent) aqueous solutions under various experimental conditions. The effects of ultrasound power, ultrasound pulse mode, reaction temperature, pH value and L-AA amount on the rates of rGO formation from GO reduction were investigated. The rates of rGO formation were found to be enhanced under the following conditions: high ultrasound power, long pulse mode, high temperature, high pH value and large amount of L-AA. It was also found that the rGO formation under ultrasound treatment was accelerated in comparison with a conventional mechanical mixing treatment. The pseudo rate and pseudo activation energy (E_a) of rGO formation were determined to discuss the reaction kinetics under both treatment. The E_a value of rGO formation under ultrasound treatment was clearly lower than that obtained under mechanical mixing treatment at the same condition. We proposed that physical effects such as shear forces, microjets and shock waves during acoustic cavitation enhanced the mass transfer and reaction of L-AA with GO to form rGO as well as the change in the surface morphology of GO. In addition, the rates of rGO formation were suggested to be affected by local high temperatures of cavitation bubbles.
机译:通过在各种实验条件下在L-抗坏血酸(L-AA,还原剂)水溶液中使用20 kHz超声,将氧化石墨烯(GO)还原为石墨烯(rGO)。研究了超声功率,超声脉冲模式,反应温度,pH值和L-AA含量对GO还原生成rGO的速率的影响。发现在以下条件下rGO形成的速率会提高:高超声功率,长脉冲模式,高温,高pH值和大量的L-AA。还发现,与常规机械混合处理相比,在超声处理下rGO的形成得以加速。确定了rGO形成的假速率和假活化能(E_a)以讨论两种处理下的反应动力学。在相同条件下,超声处理下rGO形成的E_a值明显低于机械混合处理下得到的。我们提出,在声空化过程中,诸如剪切力,微射流和冲击波等物理效应会增强L-AA与GO的传质和反应,从而形成rGO以及GO表面形态的变化。另外,rGO形成的速率建议受空化气泡局部高温影响。

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