材料科学
热电材料
热电效应
烧结
复分解
晶界
纳米技术
化学工程
塞贝克系数
能量转换效率
阳离子聚合
降级(电信)
扩散
光电子学
热电发电机
盐变质反应
工程物理
陶瓷
粒度
功率密度
铋
电阻率和电导率
余热
作者
Yi Wang,Zhen Fan,Kaiwei Guo,LI Yunfan,Dongheng Yang,Fuhong Chen,Xiaowei Wu,Qi Zhao,Joseph Woods,Yuan Yao,Yu Zhen Yuan,Hangtian Zhu,Lunhua He,Duncan H. Gregory,Huaizhou Zhao
摘要
ABSTRACT The bright promise of Mg 3 (Sb,Bi) 2 as a next‐generation near‐room‐temperature thermoelectric material is challenged both by the need for reliable and economical synthesis and by performance degradation from detrimental Mg‐vacancy defects at grain boundaries and within grains. Here, we reveal that Earth‐abundant oxides (Fe 2 O 3 , ZrO 2 and TiO 2 ) can unlock superior thermoelectric performance in Mg 3 (Sb,Bi) 2 via a simple metathesis strategy. Incorporation of the oxides (at only 1–3 mol%) in Mg‐excess Mg 3 (Sb,Bi) 2 powders during spark‐plasma sintering initiates “Mg‐oxide” reduction reactions; the subsequent “transition metal‐Mg 3 (Sb,Bi) 2 ” reactions release a source of additional Mg, whose global diffusion refills cationic vacancies in the bulk matrix, enabling markedly enhanced power factors and figures of merit. Our fabricated 8‐pair Mg 3 Sb 0.75 Bi 1.25 /MgAgSb device attained remarkable conversion efficiency and output power density of 11.7% and 1.0 W cm −2 at a temperature gradient (Δ T ) of 315 K. Notably, a Mg 3 Sb 0.5 Bi 1.5 /Bi 0.5 Sb 1.5 Te 3 module demonstrated maximum cooling Δ T s competitive with state‑of‑the‑art Bi 2 Te 3 coolers at 200–373 K. The proposed metathesis strategy not only offers an eco‐friendly and cost‐effective route to defect engineering, promoting applications of Mg 3 (Sb,Bi) 2 TEs, but also provides key insights into the structure‐property relationships and thermoelectric performance optimization of other Mg‐based TEs and Zintl phases.
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