G'/> Electrodeposition preparation of Ce-doped Ti/SnO <ce:inf loc='post'>2</ce:inf>-Sb electrodes by using selected addition agents for efficient electrocatalytic oxidation of methylene blue in water
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Electrodeposition preparation of Ce-doped Ti/SnO 2-Sb electrodes by using selected addition agents for efficient electrocatalytic oxidation of methylene blue in water

机译:Ce-掺杂Ti / SnO的电沉积制剂 2 -SB电极通过使用所选添加剂进行高效电催化氧化亚甲基蓝色

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Graphical abstractDisplay OmittedHighlights?How addition agents affect the electrodeposition preparation of CTSS electrode was studied.?The carboxylic groups in addition agents affected the morphology of electrode surface.?The CTSS electrode by glucose exhibited highly porous coralline-like structure.?The CTSS electrode promoted the electrochemical oxidation of methylene blue in water.AbstractThis paper describes assembling Ce-doped Ti/SnO2-Sb (CTSS) electrodes via electrodeposition by using glucose, citric acid, tartaric acid, oxalic acid and nothing (for comparison) asaddition agent, respectively, for highly efficient organic wastewater treatment. The physicochemical properties of five CTSS electrodes were characterized by using the scanning electron microscopy, X-ray diffraction, X-ray photoelectron spectroscope and electrochemical measurements. The measurement using SEM exhibited the highly porous coralline-like surface morphology of CTSS(glucose)electrode. It is attributed to fewer carboxylic groups in glucose than in other four addition agents. LSV curves showed that the oxygen evolution overpotentials were 2.36V, 2.29V, 2.35V, 2.25V, and 2.14V for CTSS(glucose), CTSS(citric acid), CTSS(tartaric acid), CTSS(oxalic acid)and CTSS(nothing), respectively, indicating that using glucose as addition agent is conductive to electrode preparation for efficient electrocatalytic oxidation of organic wastewaters. The electrocatalytic oxidation removal of methylene blue (MB) was investigated in a 0.5M H2SO4and 0.1M Na2SO4aqueous solution. The color removal efficiencies after one-hour electrolysis treatment with CTSS(glucose)electrode in this aqueous medium at the current densities of 20, 40, 60mAcm?2were all more than 99%. It was found that the CTSS(glucose)electrode has more sufficient active catalytic sites and a service life of 23h in an accelerated life test, which is longer than the other CTSS ones. Adding glucose into the electroplate liquid to assemble CTSS electrode did achieve more obvious decolorization.]]>
机译:<![cdata [ 图形摘要 显示省略 突出显示 < CE:简单段ID =“SP0010”View =“全部”> 研究了加法的影响如何影响CTSS电极的电沉积制剂。 羧基中的羧基受影响的药剂电极表面的形态。 通过葡萄糖的CTSS电极表现出高度多孔的珊瑚状结构。 CTSS电极促进水中亚甲基蓝色的电化学氧化。 抽象 (葡萄糖)电极。它归因于葡萄糖中的羧基比其他四种添加剂更少。 LSV曲线表明,氧气进化过电位为2.36V,2.29V,2.35V,2.25V和2.14V用于CTSS (葡萄糖),CTSS (柠檬酸),CTSS (酒石酸),CTSS (草酸)和CTSS (nothol),表明使用葡萄糖作为添加剂的电极制剂用于有效的电催化剂有机废水的氧化。在0.5MH SO 4 和0.1M NA 2 SO 4 水溶液。用CTSSs (葡萄糖)电极在该水性介质中,在电流密度为20,40,60macm ?2 均超过99%。发现CTSS (葡萄糖)电极在加速寿命试验中具有足够的活性催化位点和23小时的使用寿命,这比另一个更长ctss。将葡萄糖添加到电镀液中以组装CTSS电极确实达到了更明显的脱色。 ]]>

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