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February 2, 2026International Journal of Modern Physics B1 citations

High-efficiency optoelectronics via quantum confinement in Ruddlesden–Popper pseudo-halide perovskites

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WAWaqar AhmadARAta Ur RahmanNANajah Alwadie

Key Points

  • To explore the optoelectronic properties of a two-dimensional all-inorganic pseudohalide perovskite and its photovoltaic potential.
  • Utilized first-principles density functional theory (DFT) for electronic structure analysis.
  • Conducted optical simulations to assess absorption and photoluminescence features.
  • Modeled a complete solar cell architecture to optimize power conversion efficiency.
  • Achieved a direct band gap of 2.57 eV and low binding energy of 145 meV.
  • Device demonstrated a power-conversion efficiency of 25.60% and a fill factor of 80.1%.
  • Material exhibited tunable bandgap and favorable optical properties for optoelectronic use.

Abstract

Layered halide perovskites are strong candidates for applications, including solar cells, light-emitting diodes and photodetectors, because of their diverse photo-physical properties. In this study, we use first-principles density functional theory (DFT) to investigate an all-inorganic two-dimensional pseudohalide perovskite, Cs 2 Pb(SeCN) 2 Br 2 . Its three-dimensional crystal structure consists of two-dimensional perovskite layers that act as quantum wells for electrons and holes, while one-dimensional spacer slabs create energy barriers that confine the carriers. The incorporation of pseudo ion not only reduces the quantum confinement but also the binding energy, which enhances the optoelectronic response. Electronic-structure calculations reveal a direct band gap of 2.57Formula: see texteV, a low binding energy of 145Formula: see textmeV and a small interlayer distance of only 1.74Formula: see textÅ. From optical simulations, the material exhibits tunable bandgap, visible-range absorption and photoluminescence, features that favor its use in optoelectronic devices and solar cells. To compute the compound’s photovoltaic (PV) potential, we model a complete cell with the stack fluorine-doped tin oxide, tin oxide, Cs 2 Pb(SeCN) 2 Br 2 , copper(I) oxide and gold, optimizing power conversion through variation of the absorber thickness. In the new solar-cell architecture, SnO 2 functions as the electron transport layer (ETL) and Cu 2 O serves as the hole transport layer (HTL). Under optimum conditions, the device records a fill factor (FF) of 80.1%, an open-circuit voltage of (Formula: see text) 1.89Formula: see textV, a power-conversion efficiency (PCE) of 25.60% and a short-circuit current density of (Formula: see text) 16.5Formula: see textmAFormula: see textcmFormula: see text. These findings provide a new way for studies of all-inorganic pseudohalide perovskite absorbers and point toward further improvements in solar-cell performance through both experimental work and theoretical modeling.

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Cite This Study

Ahmad et al. (2026) studied this question.

synapsesocial.com/papers/6980fefbc1c9540dea8119b3https://doi.org/10.1142/s021797922650061x
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