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Symmetry-Guaranteed High Carrier Mobility in Quasi-2D Thermoelectric Semiconductors. | LitMetric

AI Article Synopsis

  • Quasi-2D semiconductors are attracting lots of attention for their potential use in advanced electronics and thermoelectrics because of their unique properties, but low carrier mobility has been a major hurdle.
  • A new approach is proposed that leverages crystal symmetry to improve charge transport, particularly by eliminating electron-phonon coupling effects in certain vibrational modes.
  • The study highlights promising results in ZrBeSi-type quasi-2D materials, specifically a sample called Ba AgSb, which achieved a record hole mobility and high thermoelectric performance, indicating a pathway for creating better semiconductors for tech and energy applications.

Article Abstract

Quasi-2D semiconductors have garnered immense research interest for next-generation electronics and thermoelectrics due to their unique structural, mechanical, and transport properties. However, most quasi-2D semiconductors experimentally synthesized so far have relatively low carrier mobility, preventing the achievement of exceptional power output. To break through this obstacle, a route is proposed based on the crystal symmetry arguments to facilitate the charge transport of quasi-2D semiconductors, in which the horizontal mirror symmetry is found to vanish the electron-phonon coupling strength mediated by phonons with purely out-of-plane vibrational vectors. This is demonstrated in ZrBeSi-type quasi-2D systems, where the representative sample Ba AgSb shows a high room-temperature hole mobility of 344 cm V S , a record value among quasi-2D polycrystalline thermoelectrics. Accompanied by intrinsically low thermal conductivity, an excellent p-type zT of ≈1.3 is reached at 1012 K, which is the highest value in ZrBeSi-type compounds. This work uncovers the relation between electron-phonon coupling and crystal symmetry in quasi-2D systems, which broadens the horizon to develop high mobility semiconductors for electronic and energy conversion applications.

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Source
http://dx.doi.org/10.1002/adma.202210380DOI Listing

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