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Probing the surface sensitivity of dimethyl ether oxidation on epitaxially-grown PtRh(100) alloys: Insights into the challenge of improving on Pt(100)

机译:探测外延生长的PTRH(100)合金对二甲基醚氧化的表面敏感性:对Pt(100)改善挑战的见解

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Dimethyl ether (DME) has attracted significant interest as a potential alternative energy carrier for fuel cells. Its electrochemical oxidation is uniquely promoted at the Pt(1 00) surface, which features the double-bridge ensemble required for C-O bond breaking to occur. To investigate the DME oxidation activity of bimetallic (1 0 0) surfaces in sulfuric acid, pulsed laser deposition (PLD) was employed to grow thin-film PtRh alloys on a well-ordered MgO (1 00) substrate. This technique ensured the epitaxial growth of the metal layer along the [0 0 1] plane in a cube-on-cube fashion, as highlighted by X-ray diffraction pole figures. The entire composition range was explored: Rh and Rh-rich alloys display a very poor DME oxidation activity, restricted to the first voltammetric cycle; this confirmed that the presence of an excess of Rh at the surface severely impairs DME oxidation. On the other hand, Pt-rich alloys are able to perform steady-state DME oxidation. Their actual (electrochemically-accessible) surface Rh content can also be fine-tuned by repeated cycling into the oxide region; however, this inevitably involves the introduction of defects. Hence, two useful lessons can be learned about the electrocatalysis of DME oxidation at bimetallic (1 00) surfaces: the intensity of DME oxidation is primarily controlled by the quality and quantity of Pt(1 0 0) surface domains, while the presence of surface and sub-surface Rh only induces a minor shift of the oxidation wave to earlier potentials. Finally, we also showed that an anticipation of the CO stripping potential does not translate into any significant enhancement of DME oxidation, in line with earlier reports indicating that CO oxidation is not the rate-determining step of DME oxidation. (C) 2018 Elsevier Inc. All rights reserved.
机译:二甲醚(DME)吸引了作为燃料电池的潜在替代能量载体的显着兴趣。其电化学氧化在Pt(1 00)表面上唯一促进,其特征在于发生C-O键断裂所需的双桥集合。为了研究硫酸中双金属(1 0 0)表面的DME氧化活性,采用脉冲激光沉积(PLD)在井有序的MgO(1 00)衬底上生长薄膜ptrh合金。该技术确保了沿立方体上的立方体时尚沿[0 0 1]平面的金属层的外延生长,如X射线衍射极图所示。探索整个组成范围:RH和RH富含RH的合金显示出非常差的DME氧化活性,限于第一伏安循环;这证实,在表面上存在过量的RH严重损害DME氧化。另一方面,富含Pt的合金能够进行稳态DME氧化。它们的实际(电化学访问)表面RH含量也可以通过重复循环进入氧化物区域来微调;然而,这不可避免地涉及引入缺陷。因此,可以在双金属(1 00)表面上关于DME氧化的电致分解的两个有用的课程:DME氧化的强度主要受Pt(1 0 0)表面域的质量和量,而表面存在并且副表面RH仅引起氧化波的次要偏移到早期的电位。最后,我们还表明,CO汽提电势的预期不会转化为DME氧化的任何显着增强,符合前面的报告,表明CO氧化不是DME氧化的速率确定步骤。 (c)2018年Elsevier Inc.保留所有权利。

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