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Structural Transition in the Perovskite-like Bimetallic Azido Coordination Polymers: (NMe<sub>4</sub>)<sub>2</sub>[B′·B″(N<sub>3</sub>)<sub>6</sub>] (B′ = Cr<sup>3+</sup>, Fe<sup>3+</sup>; B″ = Na<sup>+</sup>, K<sup>+</sup>)
49
Citations
16
References
2014
Year
EngineeringHalide PerovskitesMolecular Dynamics SimulationChemistryInorganic MaterialMolecular DynamicsHybrid MaterialsCalorimeter MeasurementMaterials ScienceInorganic ChemistrySuccessive DisplacementsPerovskite MaterialsStructural TransitionLead-free PerovskitesCrystallographyHost-guest ChemistryApplied PhysicsCoordination PolymerMolecule-based MaterialFunctional Materials
Through in situ variable-temperature single-crystal X-ray diffraction analysis, a solid–solid structural phase transition induced by the successive displacements of the [NMe4]+ guest and a subsequent abrupt order–disorder transform for both the cationic guest and the cage-like framework was tracked in four perovskite-like bimetallic azido coordination polymers: (NMe4)2[B′·B″(N3)6] (B′ = Cr3+, Fe3+; B″ = Na+, K+). Such structural transition was also confirmed by differential scanning calorimeter measurement, variable-temperature powder X-ray diffraction analysis, and variable-temperature dielectric permittivity measurement, as well as molecular dynamics simulation. Conclusively, these compounds provide a good host–guest model for understanding and modulating the thermal motion behavior of the [NMe4]+ guest in various confined spaces constructed by the perovskite-like azido frameworks.
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