Najib, M, Hammond, RB, Mahmud, T orcid.org/0000-0002-6502-907X et al. (1 more author)
(2021)
Impact of Structural Binding Energies on Dissolution Rates for Single Faceted-Crystals.
Crystal Growth & Design, 21 (3).
pp. 1482-1495.
ISSN 1528-7483
Abstract
This study investigates the effect of solid-state intermolecular binding energies on the dissolution rates of single faceted-crystals. The nonsteroidal anti-inflammatory drug ibuprofen is employed in a 95% v/v ethanol:water solution as a model system for single-crystal dissolution experiments in a dissolution cell at undersaturation ranging from 1.36% to 8.67%. In vitro dissolution of the ibuprofen crystals is quantified by capturing images during the dissolution process at fixed time intervals using a camera mounted on an inverted optical microscope. The regression rate of crystal faces with time is measured by an image analysis. VisualHabit software is used for a prediction of the crystal morphology and to characterize the intermolecular binding energies in the solid-state structure of the ibuprofen crystals to predict relative, face-specific dissolution rates. The relative face-specific dissolution rates of ibuprofen crystal calculated based on binding energies suggest that the face (011) dissolves faster than face (002). The experimental results on face-specific dissolution rates of single ibuprofen crystals reveal that the dissolution rates of faces (011) and (002) change nonlinearly as a function of undersaturation. The binding energy model is critically evaluated for performance as confronted with the experimental measurements. The binding energy model suggests a pathway to understand dissolution at the microscopic level and to design a crystal morphology for regulating bioavailability optimally during dissolution processes.
Metadata
Item Type: | Article |
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Authors/Creators: |
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Copyright, Publisher and Additional Information: | © 2021 American Chemical Society. This document is the Accepted Manuscript version of a Published Work that appeared in final form in Crystal Growth & Design, copyright © American Chemical Society after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acs.cgd.0c01142. Uploaded in accordance with the publisher's self-archiving policy. |
Dates: |
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Institution: | The University of Leeds |
Academic Units: | The University of Leeds > Faculty of Engineering & Physical Sciences (Leeds) > School of Chemical & Process Engineering (Leeds) |
Depositing User: | Symplectic Publications |
Date Deposited: | 01 Sep 2021 15:37 |
Last Modified: | 05 Feb 2022 01:38 |
Status: | Published |
Publisher: | American Chemical Society (ACS) |
Identification Number: | 10.1021/acs.cgd.0c01142 |
Related URLs: | |
Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:177558 |