Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10259/11439
Título
Molecular mechanisms of β-cyclodextrin solubilization in natural deep eutectic solvents: A quantum chemical investigation
Autor
Publicado en
Journal of Molecular Liquids. 2026, V. 443, 129138
Editorial
Elsevier
Fecha de publicación
2026-02
ISSN
0167-7322
DOI
10.1016/j.molliq.2025.129138
Resumen
Cyclodextrins, particularly β-cyclodextrin (β-CD), exhibit remarkable host-guest complexation capabilities due to their unique toroidal structures. Natural deep eutectic solvents (NADES), biocompatible mixtures of readily available components, represent sustainable alternatives to conventional solvents with tunable physicochemical properties. This work investigates the molecular interplay between β-CD and NADES, focusing on their potential to create sustainable, multifunctional materials. Two configurations were explored: (i) β-CD dissolved in NADES and (ii) β-CD acting as a NADES component. Using density functional theory simulations, the study examined intermolecular forces, confinement effects, and molecular topology to characterize host–guest interactions between atomistic models of selected NADES (menthol + thymol and menthol + decanoic acid) and β-CD complexes. Energetic and kinetic analyses provided insights into the driving forces and timescales of complexation processes. The findings contribute to a mechanistic understanding of NADES–CD systems, enabling rational selection of solvent compositions and cyclodextrin forms for optimized guest encapsulation and targeted functionalities.
Palabras clave
Natural deep eutectic solvents
In silico modeling
Guest - host molecule complexation
Sustainable materials design
Materia
Ciclodextrinas
Disolventes
Solvents
Versión del editor
Aparece en las colecciones
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