Por favor, use este identificador para citar o enlazar a este item: http://hdl.handle.net/10261/350600
COMPARTIR / EXPORTAR:
logo share SHARE logo core CORE BASE
Visualizar otros formatos: MARC | Dublin Core | RDF | ORE | MODS | METS | DIDL | DATACITE

Invitar a revisión por pares abierta
Título

Lamellar ionenes with highly dissociative, anionic channels provide lower barriers for cation transport

AutorStolberg, Michael A.; Paren, Benjamin A.; Leon, Pablo A.; Brown, Christopher M.; Winter, Gavin; Gordiz, Kiarash; Concellón, Alberto CSIC ORCID; Gómez-Bombarelli, Rafael; Shao-Horn, Yang; Johnson, Jeremiah A.
Fecha de publicación2023
EditorAmerican Chemical Society
CitaciónJournal of the American Chemical Society 145(29): 16200-16209 (2023)
ResumenSolid polymer electrolytes have the potential to enable safer and more energy-dense batteries; however, a deeper understanding of their ion conduction mechanisms, and how they can be optimized by molecular design, is needed to realize this goal. Here, we investigate the impact of anion dissociation energy on ion conduction in solid polymer electrolytes via a novel class of ionenes prepared using acyclic diene metathesis (ADMET) polymerization of highly dissociative, liquid crystalline fluorinated aryl sulfonimide-tagged (“FAST”) anion monomers. These ionenes with various cations (Li+, Na+, K+, and Cs+) form well-ordered lamellae that are thermally stable up to 180 °C and feature domain spacings that correlate with cation size, providing channels lined with dissociative FAST anions. Electrochemical impedance spectroscopy (EIS) and differential scanning calorimetry (DSC) experiments, along with nudged elastic band (NEB) calculations, suggest that cation motion in these materials operates via an ion-hopping mechanism. The activation energy for Li+ conduction is 59 kJ/mol, which is among the lowest for systems that are proposed to operate via an ion conduction mechanism that is decoupled from polymer segmental motion. Moreover, the addition of a cation-coordinating solvent to these materials led to a >1000-fold increase in ionic conductivity without detectable disruption of the lamellar structure, suggesting selective solvation of the lamellar ion channels. This work demonstrates that molecular design can facilitate controlled formation of dissociative anionic channels that translate to significant enhancements in ion conduction in solid polymer electrolytes.
Versión del editorhttps://doi.org/10.1021/jacs.3c05053
URIhttp://hdl.handle.net/10261/350600
DOI10.1021/jacs.3c05053
E-ISSN1520-5126
Aparece en las colecciones: (INMA) Artículos




Ficheros en este ítem:
Fichero Descripción Tamaño Formato
accesoRestringido.pdf59,24 kBAdobe PDFVista previa
Visualizar/Abrir
Mostrar el registro completo

CORE Recommender

SCOPUSTM   
Citations

1
checked on 23-abr-2024

Page view(s)

16
checked on 26-abr-2024

Google ScholarTM

Check

Altmetric

Altmetric


NOTA: Los ítems de Digital.CSIC están protegidos por copyright, con todos los derechos reservados, a menos que se indique lo contrario.