首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Ethanol oxidation reaction (EOR) investigation on Pt/C, Rh/C, and Pt-based bi- and tri-metallic electrocatalysts: A DEMS and in situ FTIR study
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Ethanol oxidation reaction (EOR) investigation on Pt/C, Rh/C, and Pt-based bi- and tri-metallic electrocatalysts: A DEMS and in situ FTIR study

机译:基于Pt / C,Rh / C和Pt的双金属和三金属电催化剂的乙醇氧化反应(EOR)研究:DEMS和原位FTIR研究

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The ethanol oxidation reaction (EOR) was studied on Pt/C, Rh/C, Pt-Rh/C, Pt-SnO2/C and Pt-Rh-SnO2/C using on-line differential electrochemical mass spectrometry (DEMS) in a flow-cell system and in situ Fourier transform infrared spectroscopy (in situ FTIR). The electrocatalysts were synthesized by a modified polyol method and physically characterized by inductively-coupled plasma atomic emission spectroscopy (ICP-AES), X-ray diffraction (XRD) and transmission electron microscopy (TEM). The electrocatalytic activity of the materials was tested for the EOR and the electrooxidation of a monolayer of adsorbed CO (COad being an intermediate of the EOR). Both in situ FTIR and DEMS investigations revealed that COad electrooxidation occurs at lower potentials on Pt-SnO2/C and Pt-Rh-SnO2/C than on Pt/C, Rh/C and Pt-Rh/C. A good correspondence was found between the (intensity vs. potential) variations of the m/z = 22 mass-to-charge signal and of the IR band at 2343 cm(-1), both strictly assigned to CO2. The addition of Rh to Pt enhances the tolerance to adsorbed CO molecules during the EOR (CO2 molecules were detected at more negative potentials in FTIR on Rh-containing electrocatalysts), and the simultaneous presence of Pt, Rh and SnO2 in the catalysts resulted in enhanced EOR selectivity towards CO2. The CO2 current efficiency (CCE) calculations indicate quantitatively that the tri-metallic Pt-Rh-SnO2/C electrocatalyst yields more complete ethanol electrooxidation into CO2. Finally, FTIR experiments enabled to detect high-potential (E > 0.95 V vs. RHE) CO2 formation, which likely originates from the oxidation of either CHx- or ethoxy-adsorbates that only oxidize at high potential. (C) 2015 Elsevier B.V. All rights reserved.
机译:使用在线差分电化学质谱法(DEMS)在Pt / C,Rh / C,Pt-Rh / C,Pt-SnO2 / C和Pt-Rh-SnO2 / C上研究了乙醇氧化反应(EOR)。流通池系统和原位傅里叶变换红外光谱(原位FTIR)。通过改进的多元醇方法合成了电催化剂,并通过电感耦合等离子体原子发射光谱法(ICP-AES),X射线衍射(XRD)和透射电子显微镜(TEM)对其进行了物理表征。测试了材料对EOR的电催化活性和吸附的CO单层(COad是EOR的中间体)的电氧化作用。原位FTIR和DEMS研究均表明,与Pt / C,Rh / C和Pt-Rh / C相比,Pt-SnO2 / C和Pt-Rh-SnO2 / C上的COad电氧化发生在较低的电势上。在m / z = 22质荷信号和2343 cm(-1)处的IR波段的变化(强度与电势)之间找到了很好的对应关系,两者均严格分配给CO2。在Pt中添加Rh增强了EOR期间对吸附的CO分子的耐受性(在含Rh的电催化剂上的FTIR中在更多负电势下检测到CO2分子),并且催化剂中同时存在Pt,Rh和SnO2导致了增强EOR对二氧化碳的选择性。 CO2电流效率(CCE)计算定量地表明,三金属Pt-Rh-SnO2 / C电催化剂可产生更完全的乙醇电氧化为CO2。最后,FTIR实验能够检测到高电势(E> 0.95 V vs. RHE)CO2的形成,这很可能源自仅在高电势下氧化的CHx-或乙氧基-吸附物的氧化。 (C)2015 Elsevier B.V.保留所有权利。

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