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Platinum–rhodium–tin/carbon electrocatalysts for ethanol oxidation in acid media: effect of the precursor addition order and the amount of tin

机译:在酸性介质中用于乙醇氧化的铂铑铑锡/碳电催化剂:前体添加顺序和锡量的影响

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摘要

Carbon-supported Pt x –Rh y –Sn z catalysts (x:y:z = 3:1:4, 6:2:4, 9:3:4) are prepared by Pt, Rh, and Sn precursors reduction in different addition order. The materials are characterized by X-ray diffraction, transmission electron microscopy, and X-ray photoelectron spectroscopy techniques and are evaluated for the electrooxidation of ethanol in acidic media by cyclic voltammetry, chronoamperometry, and anode potentiostatic polarization. The influence of both the order in which the precursors are added and the composition of metals in the catalysts on the electrocatalytic activity and physico-chemical characteristics of Pt x –Rh y –Sn z /C catalysts is evaluated. Oxidized Rh species prevail on the surface of catalysts synthesized by simultaneous co-precipitation, thus demonstrating the influence of synthesis method on the oxidation state of catalysts. Furthermore, high amounts of Sn in composites synthesized by co-precipitation result in very active catalysts at low potentials (bifunctional effect), while medium Sn load is needed for sequentially deposited catalysts when the electronic effect is most important (high potentials), since more exposed Pt and Rh sites are needed on the catalyst surface to alcohol oxidation. The Pt3–Rh1–Sn4/C catalyst prepared by co-precipitation is the most active at potentials lower than 0.55 V (related to bifunctional effect), while the Pt6–Rh2–Sn4/C catalyst, prepared by sequential precipitation (first Rh and, after drying, Pt + Sn), is the most active above 0.55 V.
机译:碳载Pt x –Rh y –Sn z催化剂(x:y:z = 3:1:4、6:2:4、9:3:4)是通过在不同条件下还原Pt,Rh和Sn制备的加法顺序。该材料通过X射线衍射,透射电子显微镜和X射线光电子能谱技术进行表征,并通过循环伏安法,计时电流法和阳极恒电位极化法评估了酸性介质中乙醇的电氧化作用。评价了前体的添加顺序和催化剂中金属的组成对Pt x -Rh y -Sn z / C催化剂的电催化活性和理化特性的影响。同时共沉淀合成的催化剂表面普遍存在被氧化的Rh物种,从而证明了合成方法对催化剂氧化态的影响。此外,通过共沉淀合成的复合物中大量的Sn导致低电势下的高活性催化剂(双功能效应),而当电子效应最重要时(高电势),顺序沉积的催化剂需要中等Sn负载,因为更多催化剂表面需要暴露的Pt和Rh位点进行醇氧化。通过共沉淀制备的Pt3-Rh1-Sn4 / C催化剂在电势低于0.55 V时最为活跃(与双功能效应有关),而通过连续沉淀法制备的Pt6-Rh2-Sn4 / C催化剂(第一个Rh和干燥后(Pt + Sn)在0.55 V以上是最活跃的。

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