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A novel sol-gel coating method for fabricating dense layers on porous surfaces particularly for metal-supported SOFC electrolyte

机译:一种新颖的溶胶-凝胶涂覆方法,用于在多孔表面上制造致密层,特别是用于金属负载的SOFC电解质

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This paper presents a study on a solution coating process for depositing layers on porous surfaces, i.e., metal-supported SOFC electrolyte. PVP and nanoparticles are used to achieve the study objectives. PVP, which possesses a type of coiled long chain structure, can increase the solution viscosity and relieve stress. However, PVP can react with nitrate ions, consequently generating excessive ignition, which causes an inhomogeneous microstructure and forms many defects. The application of nanoparticles can control the stress and reduce cracks. Subsequently, to densify and repair the cracks, an additional solution coating process is applied. YSZ is selected as a candidate, and OCV and SEM measurements are conducted to confirm the YSZ density. The YSZ solution is multi-coated to the GDC layer, and a fully dense layer can be deposited on the coated GDC surface. The proposed coating process can fabricate a dense electrolyte under oxidation environments at a relatively low temperature using a wet-chemical process. Furthermore, in terms of spin coating and heat treatment, it can be continuously and automatically performed. Therefore, the multi-coating process developed in this research can be readily commercialized. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本文提出了一种用于在多孔表面上沉积层的溶液涂覆工艺的研究,即金属负载的SOFC电解质。 PVP和纳米颗粒用于达到研究目的。 PVP具有一种卷曲的长链结构,可以增加溶液粘度并缓解应力。但是,PVP会与硝酸根离子发生反应,从而产生过多的着火,从而导致微观结构不均匀并形成许多缺陷。纳米粒子的应用可以控制应力并减少裂纹。随后,为了压实和修复裂纹,采用了额外的溶液涂覆工艺。选择YSZ作为候选,并进行OCV和SEM测量以确认YSZ密度。将YSZ溶液多层涂覆到GDC层上,并且可以在涂覆的GDC表面上沉积完全致密的层。所提出的涂覆工艺可以使用湿化学工艺在相对较低的温度下在氧化环境下制造致密的电解质。此外,就旋涂和热处理而言,它可以连续自动地进行。因此,这项研究中开发的多层涂覆工艺可以很容易地商业化。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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