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首页> 外文期刊>Electrochimica Acta >Electrocatalytic Reduction-oxidation of Chlorinated Phenols using a Nanostructured Pd-Fe Modified Graphene Catalyst
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Electrocatalytic Reduction-oxidation of Chlorinated Phenols using a Nanostructured Pd-Fe Modified Graphene Catalyst

机译:纳米结构的Pd-Fe修饰石墨烯催化剂对氯化苯酚的电催化还原-氧化

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A Pd-Fe modified graphene (Pd-Fe/G) catalyst was prepared by the Hummers oxidation method and bimetallic co-deposition method. The catalyst was then characterized by various characterization techniques and its electrochemical property toward the electrocatalytic reduction-oxidation of chlorinated phenols was investigated by using cyclic voltammetry and differential pulse voltammetry. The results of the characterization show that the Pd-Fe/G catalyst in which the weight proportion of Pd and Fe is 1:1 has an optimal surface performance. The diameter of the Pd-Fe particles is approximately 5.2 +/- 0.3 nm, with a uniform distribution on the supporting graphene. This is smaller than the Pd particles of a Pd-modified graphene (Pd/G) catalyst. The Pd-Fe/G catalyst shows a higher electrocatalytic activity than the Pd/G catalyst for reductive dechlorination when feeding with hydrogen gas. The reductive peak potentials of -0.188 V, -0.836 V and -0.956 V in the DPV curves are attributed to the dechlorination of ortho-Cl, meta-Cl, and para-Cl in 2-chlorophenol, 3-chlorophenol and 4-chlorophenol, respectively. In accordance with an analysis of the frontier orbital theory, the order of ease of dechlorination with Pd-Fe/G catalyst is 2-chlorophenol > 3-chlorophenol > 4-chlorophenol. The Pd-Fe/G catalyst has a greater activity than the Pd/G catalyst in accelerating the two-electron reduction of O-2 to H2O2, which is attributed to the higher current of the reduction peak at approximately -0.40 V when feeding with oxygen gas. Therefore, the Pd-Fe/G catalyst exhibits a higher electrocatalytic activity than the Pd/G catalyst for the reductive dechlorination and acceleration of the two-electron reduction of O-2 to H2O2. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过Hummers氧化法和双金属共沉积法制备了Pd-Fe改性石墨烯(Pd-Fe / G)催化剂。然后通过各种表征技术对催化剂进行了表征,并通过循环伏安法和微分脉冲伏安法研究了其对氯化苯酚的电催化还原氧化的电化学性能。表征结果表明,Pd和Fe的重量比为1:1的Pd-Fe / G催化剂具有最佳的表面性能。 Pd-Fe颗粒的直径约为5.2 +/- 0.3 nm,在支撑石墨烯上分布均匀。它小于Pd改性石墨烯(Pd / G)催化剂的Pd颗粒。与氢气一起进料时,Pd-Fe / G催化剂显示出比Pd / G催化剂更高的电催化活性。 DPV曲线中-0.188 V,-0.836 V和-0.956 V的还原峰电位归因于邻氯,间氯和对氯在2-氯苯酚,3-氯苯酚和4-氯苯酚中的脱氯作用, 分别。根据前沿轨道理论的分析,用Pd-Fe / G催化剂脱氯的难易程度为2-氯苯酚> 3-氯苯酚> 4-氯苯酚。 Pd-Fe / G催化剂在加速O-2到H2O2的两电子还原方面比Pd / G催化剂具有更大的活性,这归因于当与氧气。因此,Pd-Fe / G催化剂在还原脱氯和加速O-2到H2O2的两电子还原方面表现出比Pd / G催化剂更高的电催化活性。 (C)2015 Elsevier Ltd.保留所有权利。

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