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March 12, 2026Discover Electronics3 citationsOpen Access

Electronic and optical properties of mixed-halide perovskites, CsxFA1−xPb(X, X’)3: insights from density functional theory

CEChioma P. EgwuoguNONnamdi V. OguekeEOEmeka E. Oguzie

Key Points

  • The aim is to investigate how halide composition and cesium doping affect the electronic and optical properties of mixed-halide perovskites.
  • Utilized density functional theory to compute electronic properties.
  • Analyzed the effect of halide electronegativity on band gaps.
  • Examined charge-screening behavior related to halide composition.
  • Investigated cesium incorporation on lattice stability.
  • Computed band gaps of 1.637 eV for Cl, 1.449 eV for Br, and 0.883 eV for I.
  • Chloride-rich compositions showed improved dielectric response and reduced carrier recombination.
  • Cesium doping significantly reduced lattice strain and improved material stability.

Abstract

This study employs density functional theory (DFT) to explore how halide composition and cesium doping influence the electronic and optical properties of mixed-halide perovskites Cs0.15FA0.85Pb(X, X’)3. The computed band gaps follow the halide electronegativity trend: Cl > Br> I resulting in values 1.637 eV, 1.449 eV, and 0.883 eV respectively. These trends remain reliable despite the well-known band-gap underestimation inherent in semi-local functionals which originates primarily from the self-interaction error and the absence of derivative continuity rather than from omitted spin-orbit coupling. Halide composition also influences charge-screening behavior strongly with the chloride-rich composition exhibiting enhanced dielectric response implying enhanced resistance to carrier recombination. Cesium incorporation at the A-site significantly improves structural stability by reducing lattice strain and suppressing phase segregation. The combined results highlight how targeted halide and cation engineering is an effective strategy for band alignment, optical absorption edges, and material durability n lead halide perovskites, offering valuable insights for the design of photovoltaic and optoelectronic devices.

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Cite This Study

Egwuogu et al. (2026) studied this question.

synapsesocial.com/papers/69b25aab96eeacc4fcec88fdhttps://doi.org/10.1007/s44291-026-00182-2
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