Artículo
Solvent Isotherms and Structural Transitions in Nanoparticle Superlattice Assembly
Missoni, Leandro Luis
; Upah, Alex; Zaldívar, Gervasio; Travesset, Alex; Tagliazucchi, Mario Eugenio
; Upah, Alex; Zaldívar, Gervasio; Travesset, Alex; Tagliazucchi, Mario Eugenio
Fecha de publicación:
04/2024
Editorial:
American Chemical Society
Revista:
Nano Letters
ISSN:
1530-6984
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
We introduce a Molecular Theory for Compressible Fluids (MOLT-CF) that enables us to compute free energies and other thermodynamic functions for nanoparticle superlattices with any solvent content, including the dry limit. Quantitative agreement is observed between MOLT-CF and united-atom molecular dynamics simulations performed to assess the reliability and precision of the theory. Among other predictions, MOLT-CF shows that the amount of solvent within the superlattice decreases approximately linearly with its vapor pressure and that in the late stages of drying, solvent-filled voids form at lattice interstitials. Applied to single-component superlattices, MOLT-CF predicts fcc-to-bcc Bain transitions for decreasing vapor pressure and for increasing ligand length, both in agreement with experimental results. We explore the stability of other single-component phases and show that the C14 Frank-Kasper phase, which has been reported in experiments, is not a global free-energy minimum. Implications for precise assembly and prediction of multicomponent nanoparticle systems are discussed.
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Articulos(INQUIMAE)
Articulos de INST.D/QUIM FIS D/L MATERIALES MEDIOAMB Y ENERGIA
Articulos de INST.D/QUIM FIS D/L MATERIALES MEDIOAMB Y ENERGIA
Citación
Missoni, Leandro Luis; Upah, Alex; Zaldívar, Gervasio; Travesset, Alex; Tagliazucchi, Mario Eugenio; Solvent Isotherms and Structural Transitions in Nanoparticle Superlattice Assembly; American Chemical Society; Nano Letters; 24; 17; 4-2024; 5270-5276
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