材料科学
热电效应
热电材料
兴奋剂
塞贝克系数
碲
光电子学
电阻率和电导率
热导率
工程物理
电导率
热电发电机
作文(语言)
冶金
发电
电子迁移率
余热
复合材料
材料性能
作者
Samridhi Choudhary,Ajay Kumar Verma
标识
DOI:10.1021/acsami.6c05594
摘要
Mg3(Sb,Bi)2-based alloys have attracted considerable attention as promising n-type thermoelectric materials for low- to mid-temperature waste heat recovery. While recent studies have reported a broad thermoelectric performance window in these materials, the Te-doped compositions remain underexplored in terms of device-level performance. Here, we investigate Mg3(Sb0.3Bi0.7)2-xTex with x = 0.007 and 0.03, representing two distinct donor doping regimes, and systematically correlate their thermoelectric transport properties with single-leg device performance. The lightly doped composition (x = 0.007) exhibits a higher Seebeck coefficient and reaches a peak ZT of ∼0.87 at 468 K. In contrast, the heavily doped composition (x = 0.03) shows higher electrical conductivity and achieves a higher peak ZT of ∼0.96 at 590 K. Despite lower peak ZT, the single-leg device of lightly doped composition delivers a little higher device efficiency (η) of ∼7%, compared to ∼6.6% for the heavily doped leg at ΔT ≈ 267 K. This is due to higher average temperature-dependent transport properties of x = 0.007 in operating ΔT, as confirmed by the cumulative temperature dependency (CTD) model. These results establish a device-oriented, composition-specific optimization strategy for Mg3(Sb,Bi)2-based thermoelectrics and highlight the importance of efficiency-driven design for practical energy harvesting applications.
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