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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Mechanistic insight into the electrocatalytic performance of reduced graphene oxide supported palladium, silver and palladium-silver nanodeposits toward electro-dehalogenation of halocarbons in room temperature ionic liquids
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Mechanistic insight into the electrocatalytic performance of reduced graphene oxide supported palladium, silver and palladium-silver nanodeposits toward electro-dehalogenation of halocarbons in room temperature ionic liquids

机译:机械洞察石墨烯氧化物的电催化性能支持钯,银和钯 - 银纳芯,朝着室温离子液体中的卤代烃的电脱离脱落

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Herein, we report the results from our extensive voltammetric investigations designed to explore, assess and explain the electrocatalytic performance of reduced graphene oxide supported metal nano-deposits toward the electro-dehalogenation of halocarbons in room temperature ionic liquids (RTILs). Specifically, we investigated the electro-reductive dechlorination of the model halocarbon, carbon tetrachloride over glassy carbon electrode (GCE) and palladium-graphene (Pd-Gr), silver-graphene (Ag-Gr) and palladium-silver-graphene (PdAg-Gr) nanocomposites in 1-butyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide ([BMIM][NTf2]). Analysis of the voltammetric data in light of Marcus-Hush formulation reveals that the electro-reductive cleavage of the C-Cl bond of CCl(4)over GCE in [BMIM][NTf2] follows a sticky dissociative electron transfer (SDET) pathway. The significantly stronger interaction energy between electrogenerated Cl(-)and CCl3 & x2d9; (radical) fragments in RTILs makes electroreduction of CCl(4)in [BMIM][NTf2] much easier than in organic solvents. The activation-driving force relationship for electro-catalytic dechlorination of CCl(4)over Pd-Gr was observed to follow a modified sticky dissociative electron transfer model wherein apart from the ion-radical interaction, the adsorptive interaction of chlorinated species with the electrocatalytic surface needs to be taken into consideration to account for the apparent activation energy-driving force dependence. Interestingly the activation energy-driving force relationships for the electroreduction of CCl(4)over Ag-Gr and PdAg-Gr were observed to fit a modified stepwise ET (MSET) pathway. In the MSET pathway, the adsorption and the implied free energy change of the electroreducible halocarbon significantly alter the solvent re-organization energy and the inherent barrier for the heterogeneous ET process. The adsorptive interaction and hence the electrocatalytic performance of PdAg-Gr were observed to be more than that observed for Ag-Gr. This is attributed to the Ag to Pd charge transfer in the PdAg-Gr nanodeposits. Our results besides underlining the positive influence of RTILs in facilitating the electroreductive detoxification of halocarbons, very well establish the mechanistic basis for the electrocatalytic performance of graphene based nanodeposits toward electrodehalogenation of halocarbons.
机译:在此,我们向旨在探讨的广泛伏安调查的结果报告,评估和解释石墨烯氧化物的电催化性能朝向室温离子液体(RTIL)中的卤烃的电脱卤素的电催化性能。具体地,我们研究了模型卤代碳,四氯化碳在玻璃碳电极(GCE)和钯 - 石墨烯(PD-GR),银 - 石墨烯(Ag-Gr)和钯 - 银 - 石墨烯(PDAG- GR)纳米复合材料在1-丁基-3-甲基咪唑鎓双(三氟甲基磺酰基)酰亚胺([Bmim] [NTF2])中。根据Marcus-Hush制剂的伏安数据分析表明,CCl(4)在[BMIM] [NTF2]中CCl(4)的C-Cl键的电解切割遵循粘性解离电子转移(SDET)途径。电流Cl( - )和CCL3&X2D9之间的显着更强的相互作用能量; (激进的)RTIL中的片段在[BMIM] [NTF2]中的CCL(4)的电极比在有机溶剂中更容易。观察到CCl(4)对PD-GR的电催化脱氯的活化驱动力关系,以遵循改性的粘性解离电子转移模型,其中除离子自由基相互作用,氯化物质与电催化表面的吸附相互作用需要考虑考虑表观激活能量驱动力依赖性。有趣的是,观察到通过AG-GR和PDAG-GR在AG-GR和PDAG-GR上电控制的激活能量驱动力关系以适合改性的逐步等(MSET)途径。在MSECAL途径中,电气卤代碳的吸附和隐含的自由能变化显着改变了溶剂重新组织能量和异质ET过程的固有屏障。吸附相互作用,因此观察到PDAG-GR的电催化性能比Ag-Gr所观察到的更多。这归因于PDAG-GR纳米孔中的AG到PD电荷转移。我们的结果除了强调RTILS在促进卤录的电极解毒方面的积极影响,非常好地确定石墨烯基纳米脂肪酸型卤代卤代卤代的电催化性能的机械基础。

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