Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/138269
Title: Field-Assisted Sintering of Refractory Oxygen-Ion and Proton Conducting Ceramics
Authors: Dunyushkina, L. A.
Issue Date: 2024
Publisher: Уральский федеральный университет
Ural Federal University
Citation: Dunyushkina L. Field-Assisted Sintering of Refractory Oxygen-Ion and Proton Conducting Ceramics / L. Dunyushkina // Electrochemical Materials and Technologies. — 2024. — Vol. 3. № 3 : Solid oxide materials as a basis of timely and promising technologies for energy production, conversion, and utilization. — № 20243040.
Abstract: Solid oxides with high oxygen-ion and proton conductivity have been extensively studied for applications in electrochemical devices such as fuel cells, electrolyzers, sensors, hydrogen separators, etc. However, the preparation of high-density ceramic electrolytes is often complicated by the exceptional refractoriness of most oxygen-ion conducting solid oxide phases. Therefore, conventional sintering of these materials is very energy consuming and low effective. In recent years, non-conventional field-assisted sintering technologies (FASTs) such as spark plasma sintering, flash sintering and microwave sintering, have been developed and applied for sintering dense ceramic electrolytes at reduced temperatures. In this article, the applications of FASTs for densification of refractory oxygen-ion and proton conducting ceramics are reviewed, while the mechanisms, advantages and limitations of these technologies are discussed, with special emphasis on the effects of FASTs on the microstructural and transport properties of sintered materials, and the performance of FAST-processed electrochemical cells.
Keywords: SOLID OXIDE ELECTROLYTES
FIELD-ASSISTED SINTERING TECHNOLOGIES
SPARK PLASMA SINTERING
FLASH SINTERING
MICROWAVE SINTERING
URI: http://elar.urfu.ru/handle/10995/138269
RSCI ID: https://elibrary.ru/item.asp?id=72192876
ISSN: 2949-0561
DOI: 10.15826/elmattech.2024.3.040
Origin: Electrochemical Materials and Technologies. 2024. Vol. 3. № 3 (Special Issue)
Appears in Collections:Electrochemical Materials and Technologies

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