z-logo
open-access-imgOpen Access
Fast Redox Kinetics in SrCo1−xSbxO3−δPerovskites for Thermochemical Energy Storage
Author(s) -
George E. Wilson,
Ieuan D. Seymour,
Andrea Cavallaro,
Stephen J. Skinner,
Ainara Aguadero
Publication year - 2022
Publication title -
journal of the electrochemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.258
H-Index - 271
eISSN - 1945-7111
pISSN - 0013-4651
DOI - 10.1149/1945-7111/ac62c5
Subject(s) - perovskite (structure) , oxide , oxygen , redox , antimony , chemistry , inorganic chemistry , isothermal process , oxygen storage , materials science , analytical chemistry (journal) , thermodynamics , crystallography , chromatography , organic chemistry , physics
The use of perovskite materials for thermochemical energy storage and oxygen separation has been gaining momentum in recent years due to their ability to topotactically exchange large volumes of oxygen, and their chemical and structural flexibility. B-site substituted SrCoO 3- δ derivatives have previously been investigated as promising materials for intermediate temperature solid oxide fuel cell cathodes due to the stabilization of a 3 C perovskite structure with high electronic and ionic conductivity that allows large oxygen storage capabilities. Here, antimony-substituted strontium cobalt oxides are investigated and identified as new candidate materials for thermochemical oxygen separation applications. In this work we shed light on the exceptional redox kinetics and cyclability of antimony-substituted variants undergoing oxygen exchange at intermediate temperatures (500 to 800 °C). Through the use of density functional theory and isothermal gas atmosphere switching, we demonstrate how the inductive effect of the more electronegative antimony dopants in the Co position, facilitates the kinetics of metal oxide oxidation, whilst hindering reduction reactions. SrCo 0.95 Sb 0.05 O 3− δ was identified to isothermally evolve 3.76 cm 3 g −1 of oxygen at 500 °C and calculated to produce up to 10.44 cm 3 g −1 under temperature-swing reaction configurations aligning with previously reported materials.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here
Accelerating Research

Address

John Eccles House
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom