Role of Defects in the Paramagnetism of Fe-doped Cs$_{2}$AgBiBr$_{6}$ Double Perovskite

Fuente: arXiv
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Main Authors: Vasylkovskyi, Volodymyr, Trukhina, Olga, Dörflinger, Patrick, Slipchenko, Mykola, Schmidt, Wolf Gero, Biktagirov, Timur, Kultaeva, Anastasiia, Kopelevich, Yakov, Dyakonov, Vladimir
Format: Preprint
Published: 2026
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author Vasylkovskyi, Volodymyr
Trukhina, Olga
Dörflinger, Patrick
Slipchenko, Mykola
Schmidt, Wolf Gero
Biktagirov, Timur
Kultaeva, Anastasiia
Kopelevich, Yakov
Dyakonov, Vladimir
author_facet Vasylkovskyi, Volodymyr
Trukhina, Olga
Dörflinger, Patrick
Slipchenko, Mykola
Schmidt, Wolf Gero
Biktagirov, Timur
Kultaeva, Anastasiia
Kopelevich, Yakov
Dyakonov, Vladimir
contents Transition-metal doping enables the introduction of spin functionality into halide double perovskites, while simultaneously modifying optical properties. Here, we combine controlled single-crystal growth, optical characterization, comprehensive electron paramagnetic resonance (EPR) spectroscopy, and first-principles modeling to identify the microscopic nature of Fe-related centers in Fe-doped Cs$_{2}$AgBiBr$_{6}$. Single crystals with nominal Fe$^{3+}$ concentrations up to 15% in the precursor stage were grown using a controlled-cooling method, yielding reproducible Fe incorporation up to 0.1% w.r.t. Bi, without secondary phases. Despite this low concentration, Fe doping introduces electronic states that influence optical absorption and photoluminescence. EPR measurements reveal an S = 5/2 Fe$^{3+}$-related center whose anisotropy follows the cubic-to-tetragonal phase transition below 120 K. Angular-dependent EPR resolves two configurations of this nearly axial spin center, with principal axes rotated by 90$^\circ$ and aligned with the $a/b$ plane of the tetragonal lattice. Density-functional calculations attribute these centers to impurity-vacancy complexes, most likely Fe$_{\rm Bi}$-V$_{\rm Br}$, that stabilise in a basal configuration of the low-temperature phase. This approach resolves vacancy-coupled defect orientations, narrowing possible models to Fe$^{3+}$-vacancy complexes and establishing them as stable, orientation-sensitive spin probes of structural symmetry in halide double perovskites, while providing a microscopic basis for tuning their magnetic and optical responses.
format Preprint
id arxiv_https___arxiv_org_abs_2601_14885
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Role of Defects in the Paramagnetism of Fe-doped Cs$_{2}$AgBiBr$_{6}$ Double Perovskite
Vasylkovskyi, Volodymyr
Trukhina, Olga
Dörflinger, Patrick
Slipchenko, Mykola
Schmidt, Wolf Gero
Biktagirov, Timur
Kultaeva, Anastasiia
Kopelevich, Yakov
Dyakonov, Vladimir
Materials Science
Transition-metal doping enables the introduction of spin functionality into halide double perovskites, while simultaneously modifying optical properties. Here, we combine controlled single-crystal growth, optical characterization, comprehensive electron paramagnetic resonance (EPR) spectroscopy, and first-principles modeling to identify the microscopic nature of Fe-related centers in Fe-doped Cs$_{2}$AgBiBr$_{6}$. Single crystals with nominal Fe$^{3+}$ concentrations up to 15% in the precursor stage were grown using a controlled-cooling method, yielding reproducible Fe incorporation up to 0.1% w.r.t. Bi, without secondary phases. Despite this low concentration, Fe doping introduces electronic states that influence optical absorption and photoluminescence. EPR measurements reveal an S = 5/2 Fe$^{3+}$-related center whose anisotropy follows the cubic-to-tetragonal phase transition below 120 K. Angular-dependent EPR resolves two configurations of this nearly axial spin center, with principal axes rotated by 90$^\circ$ and aligned with the $a/b$ plane of the tetragonal lattice. Density-functional calculations attribute these centers to impurity-vacancy complexes, most likely Fe$_{\rm Bi}$-V$_{\rm Br}$, that stabilise in a basal configuration of the low-temperature phase. This approach resolves vacancy-coupled defect orientations, narrowing possible models to Fe$^{3+}$-vacancy complexes and establishing them as stable, orientation-sensitive spin probes of structural symmetry in halide double perovskites, while providing a microscopic basis for tuning their magnetic and optical responses.
title Role of Defects in the Paramagnetism of Fe-doped Cs$_{2}$AgBiBr$_{6}$ Double Perovskite
topic Materials Science
url https://arxiv.org/abs/2601.14885