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Layered double hydroxide materials coated carbon electrode: New challenge to future electrochemical power devices

机译:层状双氢氧化物材料涂覆的碳电极:未来电化学功率器件的新挑战

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Layered double hydroxides (LDHs) have been widely used in the past years due to their unique physico chemical properties and promising applications in electroanalytical chemistry. The present paper is going to focus exclusively on magnesium-aluminum and zinc-aluminum layered double hydroxides (MgAl & ZnAl LDHs) in order to investigate the property and structure of active cation sites located within the layer structure. The MgAl and ZnAl LDH nanosheets were prepared by the constant pH co-precipitation method and uniformly supported on carbon-based electrode materials to fabricate an LDH electrode. Characterization by powder x-ray diffraction, Fourier transform infrared spectroscopy, scanning electron microscopy and transmission electron microscopy revealed the LDH form and well-crystallized materials. Wetting surface properties (hydrophilicity and hydrophobicity) of both prepared LDHs were recorded by contact angle measurement show hydrophilic character and basic property. The electrochemical performance of these hybrid materials was investigated by mainly cyclic voltammetry, electrochemicalimpe dance spectroscopy and chronoamperometry techniques to identify the oxidation/reduction processes at the electrode/electrolyte interface and the effect of the divalent metal cations in total reactivity. The hierarchy of the modified electrode proves that the electronic conductivity of the bulk material is considerably dependent on the divalent cation and affects the limiting parameter of the overall redoxprocess. However, MgAl LDH shows better performance than ZnAl LDH, due to the presence of magnesium cations in the layers. Following the structural, morphological and electrochemical behavior studies of both synthesized LDHs, the prepared LDH modified electrodes were tested through microbial fuel cell configuration, revealing a remarkable, potential new pathway for high-performance and cost-effective electrode use in electrochemical power devices. (C) 2016 Elsevier B.V. All rights reserved.
机译:层状双氢氧化物(LDHs)由于其独特的物理化学性质以及在电分析化学中的应用前景而在过去的几年中被广泛使用。本文将专门研究镁铝和锌铝层状双氢氧化物(MgAl和ZnAl LDHs),以研究位于层结构中的活性阳离子位的性质和结构。 MgAl和ZnAl LDH纳米片通过恒定pH共沉淀法制备,并均匀地负载在碳基电极材料上以制造LDH电极。通过粉末X射线衍射,傅立叶变换红外光谱,扫描电子显微镜和透射电子显微镜表征,显示出LDH形式和充分结晶的材料。通过接触角测量记录了两种制备的LDH的润湿表面性质(亲水性和疏水性),显示出亲水性和碱性。这些杂化材料的电化学性能主要通过循环伏安法,电化学阻抗跳谱法和计时电流法技术进行研究,以确定电极/电解质界面的氧化/还原过程以及二价金属阳离子在总反应性中的作用。修饰电极的层次证明,块状材料的电子电导率很大程度上取决于二价阳离子,并影响整个氧化还原过程的极限参数。然而,由于在层中存在镁阳离子,所以MgAl LDH显示出比ZnAl LDH更好的性能。在对两种合成的LDH进行结构,形态和电化学行为研究之后,通过微生物燃料电池的配置对制备的LDH修饰的电极进行了测试,揭示了在电化学功率器件中使用高性能和高性价比电极的显着,潜在的新途径。 (C)2016 Elsevier B.V.保留所有权利。

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