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Publishing Language: Chinese | Open Access

Preparation and Particle Size Control of Scandium-Doped Zirconia Submicron Powders via Homogeneous Co-precipitation Method

Fang-Zhe LI1Hui-Jia-Dai LUO1( )Meng ZHANG1Dong-Ning JI1Yu ZHOU1,2Hua KE1
School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, China
School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China
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Abstract

(ZrO2)0.9(Sc2O3)0.1 (10ScSZ) is an important commercial material for intermediate-to-high temperature solid oxide fuel cells. However, most 10ScSZ powders currently prepared by the solid-state reaction method suffer from large crystallite sizes and poor particle size uniformity; therefore, developing a simple, low-cost synthesis method with controllable particle and crystallite sizes remains crucial. This paper proposes an improved homogeneous co-precipitation method. By maintaining a stable pH value in the co-precipitation environment, 10ScSZ powder with controllable grain size and particle size was prepared. The three-step transformation process of the precursor—removal of water of crystallization, combustion decomposition of organic matter, and solid-state transformation—is also investigated. The crystallite size of the as-prepared 10ScSZ powders can be adjusted over a wide range of 10.5~31.9 nm by varying the pH of the co-precipitation environment and the calcination temperature. The primary particle size is 0.40~0.70 μm, and the powders exhibit a pure cubic phase. This synthesis route can also be extended to other rare-earth doped zirconia systems.

CLC number: TB332;TQ174.1 Document code: A Article ID: 1005-1198(2026)04-0354-12

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Advanced Ceramics
Pages 354-365

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Cite this article:
LI F-Z, LUO H-J-D, ZHANG M, et al. Preparation and Particle Size Control of Scandium-Doped Zirconia Submicron Powders via Homogeneous Co-precipitation Method. Advanced Ceramics, 2026, 47(4): 354-365. https://doi.org/10.16253/j.cnki.37-1226/tq.2026.04.005

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Received: 18 June 2026
Revised: 19 July 2026
Published: 01 August 2026
© Advanced Ceramics.

The articles published in this open access journal are distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/).