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Conductivity studies of dense yttrium-doped BaZrO3 sintered at 1325 degrees C

机译:1325℃烧结致密钇掺杂BaZrO3的电导率研究

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High-temperature proton conductors have wide applications in the areas of fuel cells, electrolysis and hydrogen separation. Barium zirconate-based materials are of interest due to their good stability and high protonic conductivity. The reported conductivity of these ceramic materials is generally less than 10(-2) S/cm, even at high temperatures. This is not high enough for an electrolyte-supported device to achieve an ASR of less than 0.2 Omega cm(2) therefore thin film electrolytes are required for successful application. As BaZrO3-based materials have to be sintered at temperatures as high as 1700 degrees C, this makes it difficult to find a suitable supporting electrode which will not undergo significant chemical reaction with the BaZrO3-based electrolyte during fabrication of the required electrode supported electrolyte. In this paper, proton-conducting BaZr0.8Y0.2O2.9 was successfully sintered at 1325 degrees C with a relative density of 96% via addition of 1 wt% ZnO. Fabrication of electrochemical cells using proton-conducting BaZr0.8Y0.2O2.9 as the electrolyte thus becomes possible. The formula of the 1 wt% ZnO added sample is Ba0.97Zr0.77Y0.19Zn0.04O3-delta which exhibits a tetragonal structure with space group P4/mbm (127); a = 5.9787(1) angstrom, c = 4.2345(1) angstrom, V = 151.36(1) angstrom(3). It was found that a solid solution was formed for a limited range of Zn doping. Conductivity has been studied as a function of atmosphere (air, dry and wet 5% H-2/Ar) with the changes in bulk and grain boundary on changing atmosphere being monitored as a function of time. The total conductivity of Ba0.97Zr0.77Y0.19Zn0.04O3-delta is 1.0 x 10(-3) S/cm above 600 degrees C therefore it may be used as a proton-conducting thin film electrolyte for efficient electrochemical devices at such temperatures. The grain boundary resistance is insigniticant at high temperature for the well-sintered sample. (C) 2007 Published by Elsevier Inc.
机译:高温质子导体在燃料电池,电解和氢分离领域具有广泛的应用。基于锆酸钡的材料因其良好的稳定性和高质子传导性而受到关注。这些陶瓷材料的报告电导率即使在高温下也通常小于10(-2)S / cm。对于电解质支持的设备而言,该值还不够高,以实现小于0.2Ωcm(2)的ASR,因此薄膜电解质是成功应用所必需的。由于必须在高达1700摄氏度的温度下烧结BaZrO3基材料,因此很难找到合适的支撑电极,该电极在制造所需的电极支撑电解质期间不会与BaZrO3基电解质发生明显的化学反应。在本文中,通过添加1 wt%的ZnO,在1325摄氏度下以96%的相对密度成功烧结了质子传导BaZr0.8Y0.2O2.9。因此,使用导电质子的BaZr0.8Y0.2O2.9作为电解质来制造电化学电池成为可能。添加了1 wt%ZnO的样品的分子式为Ba0.97Zr0.77Y0.19Zn0.04O3-δ,该分子呈四方结构,空间群为P4 / mbm(127); a = 5.9787(1)埃,c = 4.2345(1)埃,V = 151.36(1)埃(3)。发现对于有限范围的Zn掺杂形成了固溶体。已经研究了电导率随大气(空气,5%和H5%湿和湿的H-2 / Ar)的变化而变化的情况,随着时间的推移监测了变化的大气中的体积和晶界的变化。 Ba0.97Zr0.77Y0.19Zn0.04O3-δ的总电导率在600摄氏度以上为1.0 x 10(-3)S / cm,因此可用作此类温度下高效电化学装置的质子传导薄膜电解质。对于良好烧结的样品,在高温下,晶界电阻微不足道。 (C)2007年由Elsevier Inc.出版

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