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The role of connectivity on electronic properties of lead iodide perovskite-derived compounds
- Source :
- Inorganic Chemistry, 56, 14, pp. 8408-8414, Inorganic Chemistry, 56(14), 8408-8414. AMER CHEMICAL SOC, Inorganic Chemistry, INORGANIC CHEMISTRY, Inorganic Chemistry, 56, 8408-8414, Inorganic chemistry, 56(14), 8408-8414. American Chemical Society
- Publication Year :
- 2017
-
Abstract
- We use a layered solution crystal growth method to synthesize high-quality single crystals of two different benzylammonium lead iodide perovskite-like organic/inorganic hybrids. The well-known (C6H5CH2NH3)2PbI4 phase is obtained in the form of bright orange platelets, with a structure comprised of single ⟨100⟩-terminated sheets of corner-sharing PbI6 octahedra separated by bilayers of the organic cations. The presence of water during synthesis leads to formation of a novel minority phase that crystallizes in the form of nearly transparent, light yellow bar-shaped crystals. This phase adopts the monoclinic space group P21/n and incorporates water molecules, with structural formula (C6H5CH2NH3)4Pb5I14·2H2O. The crystal structure consists of ribbons of edge-sharing PbI6 octahedra separated by the organic cations. Density functional theory calculations including spin–orbit coupling show that these edge-sharing PbI6 octahedra cause the band gap to increase with respect to corner-sharing PbI6 octahedra in (C6H5CH2NH3)2PbI4. To gain systematic insight, we model the effect of the connectivity of PbI6 octahedra on the band gap in idealized lead iodide perovskite-derived compounds. We find that increasing the connectivity from corner-, via edge-, to face-sharing causes a significant increase in the band gap. This provides a new mechanism to tailor the optical properties in organic/inorganic hybrid compounds.<br />We synthesized two different benzylammonium lead iodide phases. By analyzing their crystal structures, we provide a design rule for tuning the optical properties of hybrids based on the connectivity of the metal-halide octahedra. We show that the band gap strongly depends on not only the dimensionality of the inorganic network but also on the number of iodides shared between two adjacent lead ions, resulting in corner-, edge-, and face-sharing PbI6 octahedra.
- Subjects :
- Stereochemistry
Band gap
Iodide
02 engineering and technology
Crystal structure
010402 general chemistry
ORGANOMETAL HALIDE PEROVSKITE
01 natural sciences
AUGMENTED-WAVE METHOD
Article
Inorganic Chemistry
Crystal
Phase (matter)
CH3NH3PBI3
SOLAR-CELL APPLICATIONS
METHOD
Physical and Theoretical Chemistry
BR
Theoretical Chemistry
GeneralLiterature_REFERENCE(e.g.,dictionaries,encyclopedias,glossaries)
Electronic Structure of Materials
Perovskite (structure)
chemistry.chemical_classification
BROAD-BAND EMISSION
CRYSTAL
HYBRID PEROVSKITES
AUGMENTED-WAVE
021001 nanoscience & nanotechnology
0104 chemical sciences
3. Good health
Crystallography
Chemistry
chemistry
Octahedron
0210 nano-technology
PB
Monoclinic crystal system
Subjects
Details
- ISSN :
- 00201669 and 1520510X
- Database :
- OpenAIRE
- Journal :
- Inorganic Chemistry, 56, 14, pp. 8408-8414, Inorganic Chemistry, 56(14), 8408-8414. AMER CHEMICAL SOC, Inorganic Chemistry, INORGANIC CHEMISTRY, Inorganic Chemistry, 56, 8408-8414, Inorganic chemistry, 56(14), 8408-8414. American Chemical Society
- Accession number :
- edsair.doi.dedup.....7538c84a5d56c484c80c9ec6e10f56e9