Detailansicht

Ex-situ charge-discharge XANES study and device performance of a highly stable sodium-ion capacitor from cerium oxide-cerium titanate-reduced graphene oxide composite

Verfasst von

N. Gnanaseelan, P. Elumalai, S. Archana, R. Colina-Ruiz, F. J. Espinosa-Faller, J. Mustre, L. E. Arvizu-Rodriguez, Max Marian, F. Caballero-Briones

Abstract

A CeO2-x-Ce2Ti3O8.7-reduced graphene oxide composite was synthesized by a two-step method consisting of an alkaline treatment of TiO2 nanoparticles, followed by hydrothermal reaction of Ce(NO3)3 and graphene oxide. Transmission electron microscopy and X-ray diffraction revealed CeO2 nanoparticles directly decorating the GO sheet edges, while cerium titanate nanoparticles mostly intercalate between rGO sheets. The electrochemical characterization confirmed Faradaic and non-Faradaic responses. Ex-situ X-ray absorption near edge spectroscopy performed in pristine, single charged, single discharged, and 10 cycle charge-discharged CTG electrodes, demonstrated that reversible sodiation proceeds by Na intercalation within the Ce voids at the Ce titanate, Na reaction with CeO2-x, and Na adsorption at the rGO oxygen moieties. Cycling stability was attributed to the reversibility of the Ce4+/Ce3+ redox reaction, Na mobility aided by oxygen vacancies, and rGO's role in buffering the volume change, while allowing rapid charge transfer through s and π states. Coin cell device exhibited a maximum energy of 50 Wh kg−1 and power density of 645 Wkg-1 at 4.8 Ag-1, with 97% charge retention after 5000 cycles at 2 Ag-1, making the CTG system promising for large, reversible sodium ion storage.

Details

Organisationseinheit(en)
Institut für Maschinenkonstruktion und Tribologie
Externe Organisation(en)
Pontificia Universidad Católica de Chile
Pondicherry University
University of Chicago
Universidad Marista de Mérida
Center for Research and Advanced Studies of the National Polytechnic Institute
Instituto Tecnológico de Ciudad Madero
Instituto Politecnico Nacional
Typ
Artikel
Journal
Journal of power sources
Band
684
ISSN
0378-7753
Publikationsdatum
19.05.2026
Publikationsstatus
Elektronisch veröffentlicht (E-Pub)
Peer-reviewed
Ja
ASJC Scopus Sachgebiete
Erneuerbare Energien, Nachhaltigkeit und Umwelt, Energieanlagenbau und Kraftwerkstechnik, Physikalische und Theoretische Chemie, Elektrotechnik und Elektronik
Ziele für nachhaltige Entwicklung
SDG 7 - Erschwingliche und saubere Energie
Elektronische Version(en)
https://doi.org/10.1016/j.jpowsour.2026.240425 (Zugang: Geschlossen )