凝聚态物理
Weyl半金属
塞贝克系数
磁电阻
半金属
热电效应
材料科学
磁性
热电材料
霍尔效应
拓扑(电路)
磁场
磁电机
横截面
物理
功率(物理)
带隙
量子力学
工程类
组合数学
结构工程
数学
作者
Honghui Wang,Zizhen Zhou,Jianjun Ying,Ziji Xiang,Rui Wang,Aifeng Wang,Yisheng Chai,Mingquan He,Xu Lu,Guang Han,Yu Pan,Guoyu Wang,Xiaoyuan Zhou,Xianhui Chen
标识
DOI:10.1002/adma.202206941
摘要
Magnetic topological semimetals provide new opportunities for power generation and solid-state cooling based on thermoelectric (TE) effect. The interplay between magnetism and nontrivial band topology prompts the magnetic topological semimetals to yield strong transverse TE effect, while the longitudinal TE performance is usually poor. Herein, it is demonstrated that the magnetic Weyl semimetal TbPtBi has high value for both transverse and longitudinal thermopower with large power factor (PF). At 300 K and 13.5 Tesla, the transverse thermopower and PF reach up to 214 µV K-1 and 35 µW cm-1 K-2 , respectively, which are comparable to those of state-of-the-art TE materials. Combining first-principles calculations, longitudinal magnetoresistance and planar Hall resistance measurements, and two-band model fitting, the large transverse thermopower and PF are attributed to both bipolar effect and large Hall angle. Moreover, the imperfectly compensated charge carriers and large transverse magnetoresistance induce the maximum magneto-longitudinal thermopower of 251 µV K-1 with a PF of 24 µW cm-1 K-2 at 150 K and 13.5 Tesla, which is two times higher than that at zero magnetic field. This work demonstrates the great potential of topological semimetals for TEs and offers a new excellent candidate for magneto-TEs.
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