首页> 外文学位 >Microstructural Control and Characterization of Bi2V0.9Cu0.1O5.35 (BICUVOX) Ceramics.
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Microstructural Control and Characterization of Bi2V0.9Cu0.1O5.35 (BICUVOX) Ceramics.

机译:Bi2V0.9Cu0.1O5.35(BICUVOX)陶瓷的微结构控制和表征。

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摘要

The widespread commercialization of solid-oxide fuel cells (SOFCs) and solid-oxide electrolyte cells (SOECs) is primarily limited by material degradation issues related to the required high temperature operation (>800°C). Applications of stabilized zirconia based electrolytes, which are the most commonly used oxide ion conductors, have been limited to this high temperature regime due to its low oxygen ion conductivity below 800°C. Solid electrolytes made of the BIMEVOX compositional family of materials (Bi2MexV 1-xO5.5-delta where Me=Cu, Co, Mg, Ni, Fe...) exhibit high oxide ionic conductivity similar to YSZ at a low temperature (300--600°C). Among these materials copper-substituted bismuth vanadate (Bi2V0.9Cu0.1O5.35, BICUVOX), was reported to have the highest ionic conductivity at 400°C (0.02 S/cm). It's one of the most important drawbacks of using BICUVOX, as a SOFC electrolyte is the low mechanical strength, which makes it unusable for most electrolyte supported applications. This research aims at improving mechanical strength by careful control of synthesis processing and sintering processes, thus making BICUVOX a viable material option for intermediate temperature SOFC. A co-precipitation method was used to synthesize submicron BICUVOX powder. The powder was utilized to fabricate a thin ( 250 microm) BICUVOX electrolyte membrane, with 2.5 cm2 active area and high mechanical strength. The fabricated BICUVOX membranes were densified to 97% theoretical density at lower sintering temperature and shorter time (675°C/1 h), and shows fine grain size (1.5microm) and high mechanical strength (159 MPa).
机译:固体氧化物燃料电池(SOFC)和固体氧化物电解质电池(SOEC)的广泛商业化主要受到与所需高温操作(> 800°C)相关的材料降解问题的限制。最稳定的基于氧化锆的电解质是最常用的氧化物离子导体,其应用由于其低于800°C的低氧离子传导性而被限制在这种高温条件下。由BIMEVOX组成系列材料制成的固体电解质(Bi2MexV 1-xO5.5-delta,其中Me = Cu,Co,Mg,Ni,Fe ...)在低温下(300-300°C)具有类似于YSZ的高氧化物离子电导率-600°C)。在这些材料中,铜取代的钒酸铋(Bi2V0.9Cu0.1O5.35,BICUVOX)据报道在400°C时具有最高的离子电导率(0.02 S / cm)。这是使用BICUVOX的最重要的缺点之一,因为SOFC电解质的机械强度低,这使其无法用于大多数电解质支持的应用。这项研究旨在通过仔细控制合成过程和烧结过程来提高机械强度,从而使BICUVOX成为中温SOFC的可行材料选择。使用共沉淀法合成亚微米BICUVOX粉末。该粉末被用于制造薄的(<250微米)BICUVOX电解质膜,具有2.5 cm2的有效面积和高机械强度。所制得的BICUVOX膜在较低的烧结温度和较短的时间(675°C / 1 h)下被致密化至理论密度的97%,并具有细小的晶粒尺寸(<1.5微米)和高的机械强度(159 MPa)。

著录项

  • 作者

    Razmyar, Soheil.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.
  • 学位 M.S.M.E.
  • 年度 2011
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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