塞贝克系数
材料科学
热电效应
凝聚态物理
解耦(概率)
散射
热导率
电子迁移率
热电材料
电阻率和电导率
电子
功率因数
电导率
载流子散射
有效质量(弹簧-质量系统)
费米能级
费米能量
振荡(细胞信号)
动能
霍尔效应
填充系数
电子能带结构
光电子学
带隙
费米面
电子传输链
半导体
穿透深度
作者
Xuemei Wang,Shuxian Zhang,Zhiwei Chen,Xinyue Zhang,Minghao Xue,Han Zhao,Wen Li,Zhijian Yin,Jun Luo,Yanzhong Pei
摘要
ABSTRACT Selective scattering of electrons near the Fermi level is the kinetic origin of the thermoelectric effect. Pronounced band nonparabolicity near the band edge is expected to promote the decoupling of a high Seebeck coefficient from high electrical conductivity; however, accessing this band‐edge transport regime at low temperatures remains challenging, as defect‐dominated scattering often masks the intrinsic band‐structure effects. Here, we experimentally show that single‐crystalline Bi 2 Te 3 can access a reduced‐scattering band‐edge transport regime in which the transport distribution becomes strongly energy dependent, enabling simultaneously a sizable thermopower and a high carrier mobility at cryogenic temperatures. This approach yields a record thermoelectric power factor of three times as high as that of conventional parabolic band‐dominated Bi 2 Te 3 . Quantum oscillation measurements reveal multiband transport components consistent with the band‐structure complexity of Bi 2 Te 3 , and magneto‐thermal conductivity measurements indicate a reduced Lorenz factor and suppressed electronic thermal conductivity in the same regime. The resultant over 600% thermoelectric enhancement in conventional Bi 2 Te 3 demonstrates a practical strategy of advancement by engineering band‐edge transport in strong spin–orbit coupled materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI