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March 14, 2026ACS Omega0 citationsOpen Access

Theoretical Exploration of the Physical-Chemical Properties of Divalent ( np 2 ) Cation Mixing in Double Cs 2 AgBiBr 6 Perovskite

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IOIván Ornelas-CruzRSRamiro M. dos SantosMLMatheus P. Lima

Key Points

  • This work aims to explore the physical-chemical properties of mixed-cation double perovskites for better photovoltaic applications.
  • Utilized density functional theory for electronic-structure calculations.
  • Conducted high-throughput stress-tensor optimizations across numerous configurations.
  • Investigated the impact of ionic size and cation substitution on stability and properties.
  • Identified a narrow energy distribution, indicating high structural flexibility.
  • Larger cations reduced octahedral distortions and enhanced lattice symmetry.
  • Sn- and Pb-rich mixtures were energetically favored despite positive excess energies.

Abstract

Lead-free halide double perovskites have emerged as promising alternatives to conventional lead-based materials for photovoltaic applications, as they combine environmental compatibility with structural stability. However, their indirect band gaps limit optoelectronic performance, motivating compositional and structural optimization to achieve higher efficiency. In this work, we used density functional theory calculations to investigate complex mixed-halide double perovskites with general composition Cs2AgxBixByB'zBr6, where B,B′ = Ge, Sn, or Pb. By coupling electronic-structure calculations with high-throughput stress-tensor optimizations across thousands of configurations, we identified the energetic and structural principles governing their stability and electronic properties. The results revealed a narrow energy distribution, indicating high structural flexibility and entropy-driven stabilization. Substitutional trends are dictated by ionic size, with larger cations reducing octahedral distortions and promoting lattice symmetry. Although all ternary mixtures exhibited positive excess energies, Sn- and Pb-rich compositions were energetically favored. The decomposition of the bond energy consistently linked the strength of the metal-halide interaction to the stability of the lattice, with increasing Ag content weakening the overall bonding. In particular, partial substitution of Ge, Sn, or Pb at the B-site of pristine Cs2AgBiBr6 enhanced electronic transitions and induced nonlinear bowing effects, demonstrating heterovalent substitution as an effective strategy for tuning stability and optoelectronic performance in lead-free perovskite absorbers.

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Cite This Study

Ornelas-Cruz et al. (2026) studied this question.

synapsesocial.com/papers/69b4fa6fb39f7826a300b343https://doi.org/10.1021/acsomega.5c12243
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