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April 26, 20260 citationsOpen Access

Superconducting High-Pressure Forms of LiSi and LiGe Featuring Square Planar Nets

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DBDoreen BeyerKSKristina SpektorRLRoman Lucrezi

Key Points

  • The research aims to synthesize and analyze high-pressure forms of LiSi and LiGe featuring unique structural properties and superconducting characteristics.
  • Synthesize high-pressure forms of LiSi and LiGe by reacting Li$_{12}$Si$_7$/5Si mixtures and transforming I41/a-LiGe at specific conditions.
  • Utilize density functional theory (DFT) for electronic structure calculations and evaluate electron-phonon coupling.
  • Measure magnetic susceptibility to confirm superconducting transition temperatures.
  • P4/mmm-LiGe has a superconducting transition temperature of ∼7 K and shows a diamagnetic transition at 6.3 K.
  • P4/mmm-LiSi exhibits a superconducting transition temperature of ∼6 K but partially converts to a more stable polymorph.
  • Electron-phonon coupling indicates significant bonding characteristics between Li and silicon/germanium.

Abstract

High-pressure forms of LiX (X = Si or Ge) that adopt the simple tetragonal P4/mmm CuAu structure were synthesized by reacting stoichiometric Li₁₂Si₇/5Si mixtures and by transforming I41/a-LiGe (MgGa structure) at ∼12. 5 GPa and 410 and 265 °C, respectively. P4/mmm-LiGe was recovered in quantitative yield as a metastable phase at ambient pressure, whereas P4/mmm-LiSi was partially converted into a hitherto unknown, kinetically more stable polymorph. The structures of the P4/mmm phases consist of alternately stacked square planar nets of X (dₒ₈–ₒ₈ = 2. 595 Å, and dGe–Ge = 2. 761 Å) and Li atoms. Density functional theory (DFT) -based electronic structure calculations reveal pronounced polarity, Li^0. 83+Si^0. 83– and Li^0. 84+Ge^0. 84–, together with strong covalent bonding between X atoms. Electron–phonon coupling calculations within the Migdal–Eliashberg framework predict superconducting transition temperatures of ∼7 K for P4/mmm-LiGe and ∼6 K for P4/mmm-LiSi. For LiGe, magnetic susceptibility measurements show a sharp diamagnetic transition at 6. 3 K, in support of the theoretical result.

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Cite This Study

Beyer et al. (2026) studied this question.

synapsesocial.com/papers/69edabdf4a46254e215b3b8bhttps://doi.org/10.3204/pubdb-2026-01276
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