材料科学
热电效应
陶瓷
工程物理
复合材料
热力学
工程类
物理
作者
Hongxin Wang,Xinlei Wang,Tong-An Bu,Shanshan Xu,Panpan Lv,Luchao Ren,Peng-Fei Zhang,Cuncheng Li,Mingwei Zhang,Wenyu Zhao
出处
期刊:Rare Metals
[Springer Science+Business Media]
日期:2025-02-11
卷期号:44 (5): 3324-3338
被引量:11
标识
DOI:10.1007/s12598-024-03177-8
摘要
Abstract The compositional flexibility and structural stability of SrTiO 3 ‐based perovskite oxides present a promising approach to tailor their electrical and thermal transport properties. In this work, a series of (Ca 0.25 Nd 0.25 Sr 0.35 Ba 0.15 ) 1‐ x TiO 3± δ ceramics with varying A‐site deficiencies were designed by integrating entropy engineering and defect chemistry, and their microstructural characteristics and transport properties were systematically investigated. All samples exhibited a stable single‐phase cubic structure with uniformly distributed constituent elements. The introduction of A‐site vacancies created favorable pathways for ion diffusion during the sintering process and facilitated grain growth. A‐site deficiencies significantly increased carrier concentration by promoting the formation of oxygen vacancies and Ti 3+ , while also enhancing carrier mobility by improving structural symmetry and reducing grain boundary scattering, leading to the improved power factor. The multiscale defects resulting from entropy engineering including point defects, strain fields, and high‐density grain boundaries contributed to the reduced thermal conductivity of all samples. By synergistically optimizing the entropy and defect engineering, the sample with x = 0.09 achieved a peak figure of merit ( ZT ) of 0.21 at 900 K, representing a 32% enhancement compared with that of the x = 0.03 sample. This work underscores the significance of the combined strategy of entropy engineering and defect chemistry in manipulating the transport properties of SrTiO 3 ‐based thermoelectric oxides.
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