4.8 Article

Anderson transition in stoichiometric Fe2VAl: high thermoelectric performance from impurity bands

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-31159-w

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资金

  1. Japan Science and Technology Agency (JST), program MIRAI [JPMJMI19A1]
  2. European Research Council grant
  3. Swedish Governmental Agency for Innovation Systems (VINNOVA)
  4. COMET program within the K2 Center Integrated Computational Material, Process and Product Engineering (IC-MPPE) [859480]
  5. Austrian Federal Ministry for Climate Action, Environment, Energy, Mobility, Innovation and Technology (BMK)
  6. Austrian Federal Ministry for Digital and Economic Affairs (BMDW)
  7. federal state of Styria
  8. federal state of Upper Austria
  9. federal state of Tyrol
  10. Swedish industry
  11. Royal Institute of Technology (KTH)

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Researchers have discovered a rare and unique molecular structure that can be manipulated by changing temperature and pressure, offering new possibilities for the manufacture of novel materials.
The mathematical conditions for the best thermoelectric is well known but never realised in real materials. Here, the authors propose the Anderson transition in a narrow impurity band as a physical realisation of this seemingly unrealisable scenario. Discovered more than 200 years ago in 1821, thermoelectricity is nowadays of global interest as it enables direct interconversion of thermal and electrical energy via the Seebeck/Peltier effect. In their seminal work, Mahan and Sofo mathematically derived the conditions for 'the best thermoelectric'-a delta-distribution-shaped electronic transport function, where charge carriers contribute to transport only in an infinitely narrow energy interval. So far, however, only approximations to this concept were expected to exist in nature. Here, we propose the Anderson transition in a narrow impurity band as a physical realisation of this seemingly unrealisable scenario. An innovative approach of continuous disorder tuning allows us to drive the Anderson transition within a single sample: variable amounts of antisite defects are introduced in a controlled fashion by thermal quenching from high temperatures. Consequently, we obtain a significant enhancement and dramatic change of the thermoelectric properties from p-type to n-type in stoichiometric Fe2VAl, which we assign to a narrow region of delocalised electrons in the energy spectrum near the Fermi energy. Based on our electronic transport and magnetisation experiments, supported by Monte-Carlo and density functional theory calculations, we present a novel strategy to enhance the performance of thermoelectric materials.

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