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钯铑镍电催化剂对乙醇氧化反应的意外负面性能

Unexpected Negative Performance of PdRhNi Electrocatalysts toward Ethanol Oxidation Reaction.

作者信息

ElSheikh Ahmed, McGregor James

机构信息

Department of Chemical & Biological Engineering, University of Sheffield, Sheffield S1 3JD, UK.

Mechanical Engineering Department, Faculty of Engineering, South Valley University, Qena 83523, Egypt.

出版信息

Micromachines (Basel). 2023 Apr 27;14(5):957. doi: 10.3390/mi14050957.

Abstract

Direct ethanol fuel cells (DEFCs) need newly designed novel affordable catalysts for commercialization. Additionally, unlike bimetallic systems, trimetallic catalytic systems are not extensively investigated in terms of their catalytic potential toward redox reactions in fuel cells. Furthermore, the Rh potential to break the ethanol rigid C-C bond at low applied potentials, and therefore enhance the DEFC efficiency and CO yield, is controversial amongst researchers. In this work, two PdRhNi/C, Pd/C, Rh/C and Ni/C electrocatalysts are synthesized via a one-step impregnation process at ambient pressure and temperature. The catalysts are then applied for ethanol electrooxidation reaction (EOR). Electrochemical evaluation is performed using cyclic voltammetry (CV) and chronoamperometry (CA). Physiochemical characterization is pursued using X-ray diffraction (XRD), transmission electron microscope (TEM), energy-dispersive X-ray spectroscopy (EDX) and X-ray photoelectron spectroscopy (XPS). Unlike Pd/C, the prepared Rh/C and Ni/C do not show any activity for (EOR). The followed protocol produces alloyed dispersed PdRhNi nanoparticles of 3 nm in size. However, the PdRhNi/C samples underperform the monometallic Pd/C, even though the Ni or Rh individual addition to it enhances its activity, as reported in the literature herein. The exact reasons for the low PdRhNi performance are not fully understood. However, a reasonable reference can be given about the lower Pd surface coverage on both PdRhNi samples according to the XPS and EDX results. Furthermore, adding both Rh and Ni to Pd exercises compressive strain on the Pd lattice, noted by the PdRhNi XRD peak shift to higher angles.

摘要

直接乙醇燃料电池(DEFCs)需要新设计的价格合理的新型催化剂才能实现商业化。此外,与双金属体系不同,三金属催化体系在燃料电池中对氧化还原反应的催化潜力尚未得到广泛研究。此外,铑在低外加电位下打破乙醇刚性碳 - 碳键从而提高DEFC效率和一氧化碳产率的潜力,在研究人员中存在争议。在这项工作中,通过在常压和常温下的一步浸渍法合成了两种PdRhNi/C、Pd/C、Rh/C和Ni/C电催化剂。然后将这些催化剂应用于乙醇电氧化反应(EOR)。使用循环伏安法(CV)和计时电流法(CA)进行电化学评估。使用X射线衍射(XRD)、透射电子显微镜(TEM)、能量色散X射线光谱(EDX)和X射线光电子能谱(XPS)进行物理化学表征。与Pd/C不同,制备的Rh/C和Ni/C对(EOR)没有任何活性。所遵循的方案制备出了尺寸为3 nm的合金化分散PdRhNi纳米颗粒。然而,尽管如本文文献报道,单独添加Ni或Rh会提高其活性,但PdRhNi/C样品的性能仍不如单金属Pd/C。PdRhNi性能低下的确切原因尚未完全了解。然而,根据XPS和EDX结果,可以合理推测出两个PdRhNi样品上较低的Pd表面覆盖率。此外,向Pd中添加Rh和Ni会对Pd晶格施加压缩应变,这通过PdRhNi XRD峰向更高角度的偏移得以体现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/95b4/10221291/887c1806985a/micromachines-14-00957-g001.jpg

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