How the Presence of Crystalline Phase Affects Structural Relaxation in Molecular Liquids: The Case of Amorphous Indomethacin
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Published:2023-11-13
Issue:22
Volume:24
Page:16275
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ISSN:1422-0067
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Container-title:International Journal of Molecular Sciences
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language:en
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Short-container-title:IJMS
Author:
Svoboda Roman1ORCID,
Pakosta Marek2ORCID,
Doležel Petr2ORCID
Affiliation:
1. Department of Physical Chemistry, Faculty of Chemical Technology, University of Pardubice, Studentská 573, 532 10 Pardubice, Czech Republic
2. Faculty of Electrical Engineering and Informatics, University of Pardubice, nam. Cs. legii 565, 530 02 Pardubice, Czech Republic
Abstract
The influence of partial crystallinity on the structural relaxation behavior of low-molecular organic glasses is, contrary to, e.g., polymeric materials, a largely unexplored territory. In the present study, differential scanning calorimetry was used to prepare a series of amorphous indomethacin powders crystallized to various extents. The preparations stemmed from the two distinct particle size fractions: 50–125 µm and 300–500 µm. The structural relaxation data from the cyclic calorimetric measurements were described in terms of the phenomenological Tool–Narayanaswamy–Moynihan model. For the 300–500 µm powder, the crystalline phase forming dominantly on the surface led to a monotonous decrease in the glass transition by ~6 °C in the 0–70% crystallinity range. The activation energy of the relaxation motions and the degree of heterogeneity within the relaxing matrix were not influenced by the increasing crystallinity, while the interconnectivity slightly increased. This behavior was attributed to the release of the quenched-in stresses and to the consequent slight increase in the structural interconnectivity. For the 50–125 µm powder, distinctly different relaxation dynamics were observed. This leads to a conclusion that the crystalline phase grows throughout the bulk glassy matrix along the internal micro-cracks. At higher crystallinity, a sharp increase in Tg, an increase in interconnectivity, and an increase in the variability of structural units engaged in the relaxation motions were observed.
Funder
Ministry of Education, Youth, and Sports of the Czech Republic
Subject
Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis
Reference72 articles.
1. Relaxation in glassforming liquids and amorphous solids;Angell;J. Appl. Phys.,2000
2. Struik, L.C.E. (1978). Physical Aging in Amorphous Polymers and Other Materials, Elsevier Scientific Pub. Co.
3. Kovacs, A.J. (1964). Fortschritte der Hochpolymeren-Forschung, Springer. Advances in Polymer Science.
4. Theories of relaxation;Scherer;J. Non-Cryst. Sol.,1990
5. Enthalpy relaxation and recovery in amorphous materials;Hodge;J. Non-Cryst. Sol.,1994