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    Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10259/11993

    Título
    Competitive Hydrogen-Bond Partitioning in Deep Eutectic Solvents: From Cooperative Charge Spreading to Structure–Property Design Rules
    Autor
    Huerta Sainz, Sergio de laAutoridad UBU Orcid
    Santamaría, Sara
    Escobedo Monge, María Antonieta
    Trenzado, José L.
    Diez Cabanes, Valentin
    Gutiérrez Vega, AlbertoAutoridad UBU Orcid
    Marcos Villa, Pedro A.Autoridad UBU Orcid
    Bol Arreba, AlfredoAutoridad UBU Orcid
    Atilhan, Mert
    Aparicio Martínez, SantiagoAutoridad UBU Orcid
    Publicado en
    ACS Omega. 2026, V. 11, n. 26, p. 38868–38891
    Editorial
    ACS Publications
    Fecha de publicación
    2026-07
    ISSN
    2470-1343
    DOI
    10.1021/ACSOMEGA.6C02376
    Resumen
    Deep eutectic solvents (DESs) owe their remarkable melting-point depression, high viscosity, and tunable solvation to a hydrogen-bond network far richer than the binary donor–acceptor picture suggests. This study advances the framework of competitive hydrogen-bond partitioning: ionic Cl–···H–X interactions, neutral donor–donor self-association, cation-mediated contacts, and water-competitive motifs coexist and continuously redistribute as a function of composition, temperature, and interfacial confinement. Evidence is synthesized from vibrational spectroscopy, multinuclear NMR, neutron and X-ray scattering, dielectric relaxation, classical and ab initio molecular dynamics, DFT cluster calculations, and machine-learning potentials, establishing that no single technique can fully characterize the network─a triangulation criterion requiring at least two independent method categories is essential. A quantitative structure–property framework is developed linking six hydrogen-bond descriptors─motif population, persistence distribution, network connectivity, competitive hydration index, dynamic heterogeneity, and interfacial partitioning─to viscosity, conductivity, diffusion, and glass transition across Type III, Type V, Natural DES (NADES), and hydrophobic DES. A central finding is the cooperativity–mobility tradeoff: cooperative charge spreading at Cl– simultaneously drives eutectic depression and network rigidity, defining a design axis along which DES can be rationally positioned. Water is analyzed as both competitive and cooperative partner across four hydration regimes, and interfacial hydrogen-bond reorganization at electrodes─largely neglected in prior studies─is critically examined. An integrated characterization workflow with standardized reporting criteria, validated force-field benchmarks, and data-driven descriptors for predictive screening is proposed.
    Palabras clave
    Mathematical methods
    Viscosity
    Solvents
    Physical and chemical properties
    Noncovalent interactions
    Materia
    Hidrógeno
    Hydrogen
    Disolventes
    Solvents
    URI
    https://hdl.handle.net/10259/11993
    Versión del editor
    https://doi.org/10.1021/acsomega.6c02376?urlappend=%3Fref%3DPDF&jav=VoR&rel=cite-as
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    Atribución 4.0 Internacional
    Documento(s) sujeto(s) a una licencia Creative Commons Atribución 4.0 Internacional
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    Nombre:
    Huerta-ACSO_2026.pdf
    Tamaño:
    5.567Mb
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