Pb/Si‑Doped Sr₃Sb₂ Zintl Thermoelectric (Design Hypothesis, 2026)

Status: Proposed composition family; DFT and synthesis unverified Date: 2026‑09‑24

Overview

Sr₃Sb₂ is a Zintl-type intermetallic with potential for mid‑temperature thermoelectric applications. The proposed Pb/Si co‑doping strategy aims to simultaneously tune electronic structure, carrier concentration, and lattice thermal conductivity.

1. Host System: Sr–Sb Zintl Phases

Known Sr–Sb phases include SrSb₂, Sr₂Sb₃, Sr₁₁Sb₁₀, Sr₁₆Sb₁₁, Sr₅Sb₃, and Sr₂Sb. Mixing enthalpy is strongly exothermic (≈ –70 kJ/mol). Sr₃Sb₂ is selected as the parent structure due to its electron‑precise bonding and low lattice thermal conductivity typical of Zintl frameworks.

2. Design Target

Thermoelectric figure of merit:

ZT=S2σTκ

Goal: optimize carrier concentration (~10¹⁹–10²¹ cm⁻³) while minimizing lattice thermal conductivity.

3. Proposed Composition Family

Sr3−xPbxSb2−ySiy(x=0.1–0.5,  y=0.02–0.10)

Pb on Sr site (Pb²⁺ → Sr²⁺)

  • Potential 6s lone‑pair band convergence near VBM → increased Seebeck coefficient.
  • Strong mass contrast → enhanced phonon scattering.
  • Electronic effect orthogonal to Si doping.

Si on Sb site (Si⁴⁻ → Sb⁵⁻)

  • Aliovalent acceptor doping → controlled p‑type carrier concentration.
  • More thermally stable than alkali dopants.
  • Solubility and secondary‑phase formation (e.g., SrSi₂) must be evaluated.

4. Dopant Evaluation Summary

  • Li (Sr site): strong acceptor; diffusion risk.
  • Bi (Sb site): isovalent alloying; reduces κ.
  • Pb (Sr site): highest band‑engineering potential; toxicity and phase stability concerns.
  • Yb (filler): unlikely due to dense Sr₃Sb₂ lattice.
  • Rb/Cs: destabilize lattice; mobile at operating temperatures.
  • Tc: impractical.
  • SiO₂: detrimental to σ.
  • Si (Sb site): promising but untested; solubility unknown.

5. Key Risks / Open Questions

  1. Pb 6s band position: must be confirmed by DFT; lone pair may be too deep.
  2. Si solubility: risk of SrSi₂ or metallic secondary phases.
  3. Zintl electron count: avoid metallization; maintain Fermi level near mobility edge.
  4. Sparse literature: limited transport data for doped Sr₃Sb₂.

6. Synthesis Plan

  • Arc‑melt elements under inert atmosphere.
  • Seal in Ta tube; anneal.
  • Ball‑mill to reduce grain size.
  • Spark plasma sintering (SPS) to achieve dense, fine‑grained microstructure.
  • Multi‑scale phonon scattering via point defects, strain fields, and grain boundaries.

7. Next Steps

  • DFT band structure of Pb‑doped Sr₃Sb₂ (Pnma).
  • Formation energy and phase stability calculations for Si substitution.
  • Literature search for AE₃Sb₂ thermoelectric data.
  • Pilot synthesis: x=0.2,  y=0.05 if DFT favorable.