材料科学
光电子学
热电效应
电子迁移率
热电发电机
发电
热电冷却
塞贝克系数
热电材料
功率(物理)
载流子寿命
最大功率原理
能量转换效率
最高温度
工程物理
载流子密度
发热
冷却能力
功率因数
功率半导体器件
纳米技术
电子工程
作者
Xiaojun Li,Liangsheng Wang,Yu Tian,Mengyue Wu,Rong Liu,Huiqiang Liang,Xin Qian,Lizhong Su,Chongjian Zhou,Wenke He,Li‐Dong Zhao
摘要
ABSTRACT Thermoelectric materials enable near‐room‐temperature solid‐state cooling and full‐temperature‐range power generation. However, performance optimization is strongly dependent on carrier concentration, and its close correlation with carrier mobility makes precise tailoring critical for different application scenarios. In this work, guided by the theoretical framework that treats carrier concentration as the dominant variable, versatile high thermoelectric performance has been achieved in n‐type PbSe crystals. At low carrier concentrations (∼2.9 × 10 18 cm −3 ), samples exhibit an ultrahigh carrier mobility of ∼2369 cm 2 V −1 s −1 , thus enabling an exceptional average ZT of ∼1.02 at 323–523 K. This allows for simultaneous power generation and cooling, achieving a power generation efficiency η of ∼6.1% under a temperature difference Δ T of 270 K, while an all‐PbSe‐based device achieves a maximum cooling Δ T max of ∼48.5 K. At ∼2.5 × 10 19 cm −3 , samples demonstrate an ultrahigh average power factor of ∼33.3 µW cm −1 K −2 at 323–773 K, projecting a maximum power output ∼56 mW and a η of ∼7.7% at Δ T = 470 K. Our study reveals the uniqueness of carrier concentration in optimizing thermoelectric performance across different temperature regimes, as well as its versatility in enabling applications in both high‐efficiency power generation and cooling.
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