Zero-Dimensional Bismuth Halide Thin Films with High Orientation and Broadband Emission

Abstract Lead-free low-dimensional metal halides are emerging as highly tunable materials for optoelectronic applications. Here, we report a new class of zero-dimensional bismuth halides incorporating phenethylammonium (PEA) cations, namely PEA4BiI7 and PEA4BiBr7, and investigate their structural, thermal, and optoelectronic properties. Single-crystal X-ray diffraction reveals that both compounds consist of isolated [BiX6] octahedra separated by bulky organic cations, although they crystallize in different crystal systems and exhibit high stability under ambient conditions. In contrast, the chloride analogue adopts a distinct stoichiometry, PEA4Bi2Cl10, featuring edge-sharing octahedral dimers, highlighting the strong impact of halide substitution on the structural connectivity. Optical measurements show a systematic bandgap evolution following the trend Cl > Br > I, with pronounced excitonic absorption features in all compounds; density functional theory calculations indicate that the conduction band edge is dominated by the inorganic Bi-X framework, while the valence band edge progressively changes from the organic cation to the inorganic sublattice. Thin films were fabricated via a simple one-step spin-coating procedure. Particularly, PEA4BiI7 forms highly oriented, phase-pure thin films and exhibits broadband visible photoluminescence with excitation-dependent behavior. These results establish phenethylammonium bismuth halides as a versatile platform for stable, lead-free zero-dimensional semiconductors with promising potential for solution-processed optoelectronic devices.

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Publication Details

Journal
Inorganic Chemistry
Published
2026-09-12
DOI
https://doi.org/10.1021/acs.inorgchem.6c03044
Primary Topic
Perovskite Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Zero-Dimensional Bismuth Halide Thin Films with High Orientation and Broadband Emission

Yali Yang, Raphael Neisius, Isabella Poli, Teresa Gatti et al.
Inorganic Chemistry
Perovskite Materials and Applications
article

Zero-Dimensional Bismuth Halide Thin Films with High Orientation and Broadband Emission

Yali Yang, Raphael Neisius, Isabella Poli, Teresa Gatti, Matteo Lorenzoni, Sergio Marras, Marco Moroni, Paola Ragonese, Cecilia Daniela Costa, Mengjiao Wang, Giulia Folpini, Lorenzo Malavasi, Ning Ding, Giuseppe Ferraro
article en

Abstract

Abstract Lead-free low-dimensional metal halides are emerging as highly tunable materials for optoelectronic applications. Here, we report a new class of zero-dimensional bismuth halides incorporating phenethylammonium (PEA) cations, namely PEA4BiI7 and PEA4BiBr7, and investigate their structural, thermal, and optoelectronic properties. Single-crystal X-ray diffraction reveals that both compounds consist of isolated [BiX6] octahedra separated by bulky organic cations, although they crystallize in different crystal systems and exhibit high stability under ambient conditions. In contrast, the chloride analogue adopts a distinct stoichiometry, PEA4Bi2Cl10, featuring edge-sharing octahedral dimers, highlighting the strong impact of halide substitution on the structural connectivity. Optical measurements show a systematic bandgap evolution following the trend Cl > Br > I, with pronounced excitonic absorption features in all compounds; density functional theory calculations indicate that the conduction band edge is dominated by the inorganic Bi-X framework, while the valence band edge progressively changes from the organic cation to the inorganic sublattice. Thin films were fabricated via a simple one-step spin-coating procedure. Particularly, PEA4BiI7 forms highly oriented, phase-pure thin films and exhibits broadband visible photoluminescence with excitation-dependent behavior. These results establish phenethylammonium bismuth halides as a versatile platform for stable, lead-free zero-dimensional semiconductors with promising potential for solution-processed optoelectronic devices.

Inorganic Chemistry
Politecnico di Torino (IT), University of Pavia (IT), University of L'Aquila (IT), Italian Institute of Technology (IT), National Centre for Compositional Characterisation of Materials (IN), Department of Science and Technology and Biotechnology (IN), Center for Biomolecular Nanotechnologies (IT), University of Science and Technology Beijing (CN)
Istituto Italiano di Tecnologia, European Research Council
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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