首页> 外文期刊>International journal of hydrogen energy >Enhancing the yield of hydrogen peroxide and phenol degradation via a synergistic effect of photoelectrocatalysis using a g-C_3N_4/ACF electrode
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Enhancing the yield of hydrogen peroxide and phenol degradation via a synergistic effect of photoelectrocatalysis using a g-C_3N_4/ACF electrode

机译:使用g-C_3N_4 / ACF电极通过光电催化的协同效应提高过氧化氢的产率和苯酚的降解

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In this work, a new activated carbon fiber (ACF) cathode modified with graphitic carbon nitride (g-C3N4) was developed, which enables the substantially improved production of H2O2 (up to 32.8 mg L-1) with relatively low energy consumption (10.9 kWh kg(-1)) compared to generation without g-C3N4 (4.09 mg L-1). The cathode was analyzed and characterized by scanning electron microscopy, X-ray photoelectron spectroscopy and Xray diffraction, and it was proved that the synthesized g-C3N4 is a thin layer sheet with a large number of carbon particles and low defect porosity. The cathode manufacturing parameters were optimized, and the influences of H2O2 production including the cathode potential, pH value, aeration rate and performance stability were studied. These features improved the production of H2O2 by about more than 7 folds when optimized ratio of g-C3N4 was used, and the modified cathode kept stable performance of H2O2 generation in 5 cycles. Further discussed by linear sweep voltammetry, rotating disk electrode and contact angle analysis, the existence of g-C3N4 were found to accelerate the electron transfer rate, is advantageous to the surface of the oxygen reaction, but will not change the two electronic number of oxygen reduction reaction activities, and this leads to enhanced performance of hydrogen peroxide production and the possible mechanism was suggested. Finally, the cathode improve by g-C3N4 proved the degradation effect of phenol by photoelectric-Fenton process. Phenol was degraded completely, and 93.8% of the organic carbon was removed, which is more than 1.5 and 5 times the amount achieved using electro-Fenton and photo-Fenton degradation only. In the degradation process of phenol, electrocatalysis and photocatalysis, they were optimized to produce substantial synergistic effect, proving the great potential practical application of organic wastewater treatment. (C)2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项工作中,开发了一种新的用石墨氮化碳(g-C3N4)改性的活性炭纤维(ACF)阴极,它能够以相对较低的能耗(10.9)显着提高H2O2(最高32.8 mg L-1)的产量。 kWh kg(-1))与没有g-C3N4(4.09 mg L-1)的发电量相比。通过扫描电子显微镜,X射线光电子能谱和X射线衍射对阴极进行分析和表征,证明合成的g-C3N4是具有大量碳颗粒且低缺陷孔隙率的薄层片。优化了阴极的制造参数,研究了H2O2的产生对阴极电势,pH值,通气速率和性能稳定性的影响。当使用优化比例的g-C3N4时,这些特征将H2O2的产量提高了约7倍以上,并且改性阴极在5个循环中保持了H2O2生成的稳定性能。通过线性扫描伏安法,转盘电极和接触角分析进一步讨论,发现存在g-C3N4可以加快电子的传输速度,有利于表面的氧反应,但不会改变两个电子的氧原子数还原反应活性,从而提高了过氧化氢的生产性能,并提出了可能的机理。最后,通过g-C3N4改性的阴极证明了光电芬顿法降解苯酚的效果。苯酚被完全降解,并且去除了93.8%的有机碳,这是仅使用电子芬顿和光芬顿降解所达到的1.5倍和5倍以上。在苯酚的降解,电催化和光催化过程中,对它们进行了优化以产生明显的协同作用,证明了有机废水处理的巨大潜在实际应用。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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