Halide perovskites have emerged as a versatile class of optoelectronic materials, exhibiting outstanding performance across a broad spectrum of applications, including photovoltaics, light-emitting devices, non-classical light sources, and radiation detectors. On the fundamental side, the nature of chemical bonding in halide perovskites plays a crucial role in determining their structural and (opto)electronic properties, chemical stability, and formability. For instance, their electronic bandgap is highly sensitive to octahedral tilting as well as to lattice expansion or contraction, due to changes in the orbital overlap. In fact, one of the most intriguing features of halide perovskites is their dynamic structural behavior rooted in the flexibility of the BX6 octahedra framework, which underpins complex interactions between charge carriers and the lattice. These materials exhibit pronounced structural softness and anharmonicity, as indicated by their low thermal conductivity and high thermal expansion coefficients. These features significantly influence charge transport and thermolectric properties, making halide perovskites promising candidates for various applications. In this context, this review aims to provide readers with a comprehensive overview of recent advances in the detailed atomic-scale characterization of halide perovskites, combining experimental structural chemistry and computational techniques, an essential step toward the rational design of novel materials with tailored optoelectronic properties for next-generation technologies. It examines the atomic structure and dynamics of these materials, emphasizing how chemical bonding within the inorganic framework and interactions with organic moieties in hybrid and layered systems govern their structural behavior, ultimately influencing their optoelectronic performance.

Bonding Mechanisms Underpinning Structural and Electronic Properties of Halide Perovskites

Dengo N.
Primo
;
Bini S.;Bertolotti F.
Ultimo
2026-01-01

Abstract

Halide perovskites have emerged as a versatile class of optoelectronic materials, exhibiting outstanding performance across a broad spectrum of applications, including photovoltaics, light-emitting devices, non-classical light sources, and radiation detectors. On the fundamental side, the nature of chemical bonding in halide perovskites plays a crucial role in determining their structural and (opto)electronic properties, chemical stability, and formability. For instance, their electronic bandgap is highly sensitive to octahedral tilting as well as to lattice expansion or contraction, due to changes in the orbital overlap. In fact, one of the most intriguing features of halide perovskites is their dynamic structural behavior rooted in the flexibility of the BX6 octahedra framework, which underpins complex interactions between charge carriers and the lattice. These materials exhibit pronounced structural softness and anharmonicity, as indicated by their low thermal conductivity and high thermal expansion coefficients. These features significantly influence charge transport and thermolectric properties, making halide perovskites promising candidates for various applications. In this context, this review aims to provide readers with a comprehensive overview of recent advances in the detailed atomic-scale characterization of halide perovskites, combining experimental structural chemistry and computational techniques, an essential step toward the rational design of novel materials with tailored optoelectronic properties for next-generation technologies. It examines the atomic structure and dynamics of these materials, emphasizing how chemical bonding within the inorganic framework and interactions with organic moieties in hybrid and layered systems govern their structural behavior, ultimately influencing their optoelectronic performance.
2026
2025
2025
552
1
31
31
217470
ELETTRONICO
Esperti anonimi
https://www.sciencedirect.com/science/article/pii/S0010854525010409
Inglese
Chemical bonding; Density functional theory; Halide perovskites; Molecular dynamics; Optoelectronics; Structural chemistry
no
262
Dengo, N.; Macias-Pinilla, D. F.; Virga, S.; Bini, S.; Giannici, F.; Bertolotti, F.
restricted
Articoli su Riviste::Articolo su Rivista
6
info:eu-repo/semantics/article
   Novel SUstainable double PERovskites: multiscale characterization from the atomic structure to functional properties
   SU-PER
   Ministero dell'Università e della Ricerca
   D.D. n. 1064 del 18.07.2023
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11383/2203939
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