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Distinct pathways of solid-to-solid phase transitions induced by defects: the case of dl-methionine
- Source :
- IUCrJ, Vol 8, Iss 4, Pp 584-594 (2021), IUCrJ
- Publication Year :
- 2021
- Publisher :
- International Union of Crystallography, 2021.
-
Abstract
- Ubiquitous defects in polycrystalline powders and single crystals affect the pathways of polymorphic solid-to-solid phase transitions. Dependent on the density of crystal defects, the phase transition mechanism can be dominated by either the cooperative molecular motion pathway or the nucleation and growth pathway.<br />Understanding of solid-to-solid phase transition mechanisms in polymorphic systems is of critical importance for rigorous control over polymorph purity in the pharmaceutical industry to achieve the desired bioavailability and efficacy of drugs. Ubiquitous defects in crystals may play an important role in the pathways of phase transitions. However, such effects remain poorly understood. Here, the effects of crystal defects on the solid-to-solid phase transformations between dl-me­thio­nine polymorphs α and β are investigated by means of experimental and computational approaches. Thermal analyses of polycrystalline powders show two endothermic peaks in the α-to-β phase transition (and two exothermic peaks for the reverse transition), in contrast with one thermal event observed for single crystals. Variable-temperature 1D and 2D Raman spectra, as well as powder X-ray diffraction patterns, reveal the appearance of two peaks that can attributed to a two-step phase transition, and the extent of the second-step phase transition increases with milling time (or defect density). Quantification of transition kinetics unveils a remarkably higher energy barrier in the second-step phase transition than in the first, proceeding by the cooperative molecular motion pathway. The good linear fitting on the kinetic data by the Jeziorny model suggests that the second-step transition follows the nucleation and growth mechanism. Molecular dynamics simulations were also conducted to understand the role of crystal defects in the solid-state phase transition by tracking the atomic distribution and hydrogen bond lifetime during the transition. It was found that the increasing defect density hinders the propagation of cooperative molecular motion, leading to a combined transition mechanism involving both cooperative motion and nucleation and growth. This study highlights the significant impact of crystal defects on solid-state phase transitions, and the two-step transition mechanism postulated may be universal given the ubiquitous presence of defects in crystalline materials.
- Subjects :
- Phase transition
Materials science
Nucleation
cooperative molecular motion
02 engineering and technology
010402 general chemistry
01 natural sciences
Biochemistry
Endothermic process
solid-to-solid phase transitions
polymorphism
symbols.namesake
Molecular dynamics
Phase (matter)
crystal defects
General Materials Science
pharmaceutical solids
Crystallography
nucleation and growth
digestive, oral, and skin physiology
General Chemistry
021001 nanoscience & nanotechnology
Condensed Matter Physics
polymorphs
Research Papers
Crystallographic defect
0104 chemical sciences
Chemical physics
QD901-999
symbols
Crystallite
0210 nano-technology
Raman spectroscopy
Subjects
Details
- Language :
- English
- ISSN :
- 20522525
- Volume :
- 8
- Issue :
- 4
- Database :
- OpenAIRE
- Journal :
- IUCrJ
- Accession number :
- edsair.doi.dedup.....e826ce0d3b3a41700ed8be2829f64b88