材料科学
热电效应
光电子学
兴奋剂
碳纳米管
半导体
塞贝克系数
电阻率和电导率
热电材料
热传导
功率因数
热导率
吸收(声学)
电压
电子迁移率
费米能级
大气温度范围
热电发电机
热的
电导率
异质结
载流子
半导体器件
能量转换效率
功率(物理)
纳米技术
碳纤维
载流子寿命
费米能量
作者
Qing Wang,Zhiliang Li,JiangLong WANG,Shuaihang Hou,Chang Liu,W Y Zhang,Zongmo Shi,Shufang Wang,Yuan‐Hua Lin
出处
期刊:Small
[Wiley]
日期:2026-01-12
卷期号:22 (13): e14577-e14577
标识
DOI:10.1002/smll.202514577
摘要
InSb-based semiconductors are promising candidates for medium-temperature thermoelectric applications owing to their non-toxicity, abundance, ultrahigh mobility, excellent process compatibility, and chemical stability. However, their single conduction band, small effective mass, and narrow optimal carrier transport range pose challenges for electrical property optimization. Herein, we achieve an obvious performance enhancement in InSb via Sn-doping, which concurrently induces resonant levels near the Fermi level and optimizes carrier concentration. This dual effect improves electrical conductivity while preserving a relatively high Seebeck coefficient, thereby yielding a remarkable power factor (PF∼5.60 mW m-1 K-2) in Sn-doped InSb. Ultimately, a high zT value of 0.80 at 723 K for InSn0.00125Sb is achieved due to the enhanced power factor and reduced thermal conductivity, which is approximately 67% higher than that of intrinsic InSb. Furthermore, the corresponding single pair InSb-based module generates an open-circuit voltage of 94 mV and an output power of 2885 µW under a temperature difference of 320 K. In addition, an InSb-based solar-thermoelectric device using carbon nanotubes as the light absorption layer also demonstrates outstanding performance, highlighting its significant potential for applications in thermoelectric energy conversion.
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