首页> 外文期刊>International journal of hydrogen energy >Application of electroless plating process for multiscale Ni-La_(0.8)Sr_(0.2)Ga_(0.8)Mg_(0.2)O_(3-σ) SOFC anode fabrication
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Application of electroless plating process for multiscale Ni-La_(0.8)Sr_(0.2)Ga_(0.8)Mg_(0.2)O_(3-σ) SOFC anode fabrication

机译:化学镀工艺在多尺度Ni-La_(0.8)Sr_(0.2)Ga_(0.8)Mg_(0.2)O_(3-σ)SOFC阳极制造中的应用

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摘要

An electroless plating process of nickel is introduced to solve the drawbacks of impregnation for developing the multiscale anode of a solid oxide fuel cell (SOFC). Impregnation is the conventional fabrication method of the electrode. The process is not favorable for depositing nanoscale metal catalysts due to severe problems including agglomeration of the catalysts while reducing metal oxides. Thus, as an alternative, we propose electroless plating of nickel to fabricate a multiscale nickel-based SOFC anode. A Ni-LSGM (La0.8Sr0.2-Ga0.8Mg0.2O3-sigma) anode is selected. The low chemical compatibility of LSGM with nickel emphasizes the advantage of the electroless plating process. First, nanoscale nickel particles are successfully applied as the main catalyst of the SOFC anode by plating nickel to the surface of the LSGM scaffold substrate near the triple phase boundary region. Thin film X-ray diffraction and image analysis confirm that pure nanoscale nickel particles form on the entire substrate, even at a low temperature (60 degrees C) without secondary phase formation. Electrochemical impedance spectroscopy analysis is then performed to verify the possibility of implementing an efficient Ni-LSGM anode through nickel electroless plating. As a result, the new Ni-LSGM anode shows similar to 50 times higher electrochemical performance than that of an impregnated Ni-LSGM anode. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:引入镍的化学镀工艺以解决用于开发固体氧化物燃料电池(SOFC)的多尺度阳极的浸渍的缺点。浸渍是电极的常规制造方法。由于严重的问题,包括在减少金属氧化物的同时,催化剂的团聚,该方法对于沉积纳米级金属催化剂是不利的。因此,作为替代方案,我们建议化学镀镍以制造多尺度镍基SOFC阳极。选择Ni-LSGM(La0.8Sr0.2-Ga0.8Mg0.2O3-sigma)阳极。 LSGM与镍的低化学相容性强调了化学镀工艺的优势。首先,通过将镍电镀到三相边界区域附近的LSGM支架基板表面上,成功地将纳米级镍颗粒用作SOFC阳极的主要催化剂。薄膜X射线衍射和图像分析证实,即使在低温(60摄氏度)下也不会形成次级相,在整个基板上都形成了纯纳米级镍颗粒。然后进行电化学阻抗光谱分析,以验证通过镍化学镀实现高效Ni-LSGM阳极的可能性。结果,新的Ni-LSGM阳极的电化学性能是浸渍Ni-LSGM阳极的50倍左右。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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