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Anomalous Thermoelectric Performance in Asymmetric Dirac Semimetal BaAgBi.

Zizhen ZhouKunling PengShijuan XiaoYiqing WeiQinjin DaiXu LuGuoyu WangXiaoyuan Zhou
Published in: The journal of physical chemistry letters (2022)
Multiple-band degeneracy has been widely recognized to be beneficial for high thermoelectric performance. Here, we discover that the p-type Dirac bands with lower degeneracy synergistically produce a higher Seebeck coefficient and electrical conductivity in topological semimetal BaAgBi. The anomalous transport phenomenon intrinsically originated from the asymmetric electronic structures: (i) complete p-type Dirac bands near the Fermi level facilitate high and strong energy-dependent hole relaxation time; (ii) the presence of additional parabolic conduction valleys allows for a large density of states to accept scattered electrons, leading to an enlarged hole-electron relaxation time ratio and, thus, weakened bipolar effect. In combination with the strong lattice anharmonicity, an exceptional p-type average ZT of 0.42 is achieved from 300 to 600 K, which can be dramatically enhanced to 1.38 via breaking the C 3 v symmetry. This work uncovers the underlying mechanisms governing the abnormal transport behavior in Dirac semimetal BaAgBi and highlights the asymmetric electronic structures as target features to discover/design high-performance thermoelectric materials.
Keyphrases
  • high resolution
  • single molecule
  • bipolar disorder
  • solid state
  • computed tomography
  • magnetic resonance
  • mass spectrometry