Methylammonium Tetrel Halide Perovskite Ion Pairs and Their Dimers: The Interplay between the Hydrogen-, Pnictogen- and Tetrel-Bonding Interactions

The structural stability of the extensively studied organic-inorganic hybrid methylammonium tetrel halide perovskite semiconductors, MATtX (MA = CH NH ; Tt = Ge, Sn, Pb; X = Cl, Br, I), arises as a result of non-covalent interactions between an organic cation (CH NH ) and an inorganic anion (TtX )....

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Veröffentlicht in:International journal of molecular sciences 2023-06, Vol.24 (13), p.10554
Hauptverfasser: Varadwaj, Pradeep R, Varadwaj, Arpita, Marques, Helder M, Yamashita, Koichi
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Sprache:eng
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Zusammenfassung:The structural stability of the extensively studied organic-inorganic hybrid methylammonium tetrel halide perovskite semiconductors, MATtX (MA = CH NH ; Tt = Ge, Sn, Pb; X = Cl, Br, I), arises as a result of non-covalent interactions between an organic cation (CH NH ) and an inorganic anion (TtX ). However, the basic understanding of the underlying chemical bonding interactions in these systems that link the ionic moieties together in complex configurations is still limited. In this study, ion pair models constituting the organic and inorganic ions were regarded as the repeating units of periodic crystal systems and density functional theory simulations were performed to elucidate the nature of the non-covalent interactions between them. It is demonstrated that not only the charge-assisted N-H···X and C-H···X hydrogen bonds but also the C-N···X pnictogen bonds interact to stabilize the ion pairs and to define their geometries in the gas phase. Similar interactions are also responsible for the formation of crystalline MATtX in the low-temperature phase, some of which have been delineated in previous studies. In contrast, the Tt···X tetrel bonding interactions, which are hidden as coordinate bonds in the crystals, play a vital role in holding the inorganic anionic moieties (TtX ) together. We have demonstrated that each Tt in each [CH NH •TtX ] ion pair has the capacity to donate three tetrel (σ-hole) bonds to the halides of three nearest neighbor TtX units, thus causing the emergence of an infinite array of 3D TtX octahedra in the crystalline phase. The TtX octahedra are corner-shared to form cage-like inorganic frameworks that host the organic cation, leading to the formation of functional tetrel halide perovskite materials that have outstanding optoelectronic properties in the solid state. We harnessed the results using the quantum theory of atoms in molecules, natural bond orbital, molecular electrostatic surface potential and independent gradient models to validate these conclusions.
ISSN:1422-0067
1661-6596
1422-0067
DOI:10.3390/ijms241310554