TY - JOUR
T1 - Towards efficient oxygen separation from air
T2 - Influence of the mean rare-earth radius on thermodynamics and kinetics of reactivity with oxygen in hexagonal Y1-xRxMnO3+δ
AU - Cichy, Kacper
AU - Świerczek, Konrad
AU - Jarosz, Katarzyna
AU - Klimkowicz, Alicja
AU - Marzec, Mateusz
AU - Gajewska, Marta
AU - Dabrowski, Bogdan
N1 - Funding Information:
This work was supported by the National Science Centre, Poland [grant number 2018/31/N/ST5/02280 ]; and the JSPS KAKENHI [grant number JP18K13997 ].
Publisher Copyright:
© 2020 Acta Materialia Inc.
PY - 2021/2/15
Y1 - 2021/2/15
N2 - It is documented that the mean radius r¯ of rare-earth cations occupying Y1-xRx sublattice in Y1-xRxMnO3+δ hexagonal oxides plays a decisive role in terms of thermodynamics and kinetics of reactivity of the materials with oxygen, and consequently, influences strongly the oxygen storage performance in thermal swing processes conducted in oxygen and air. Y1-xRxMnO3+δ samples with designed r¯ being close to the critical one, at the border of stability between hexagonal- and perovskite-type phases, can reversibly incorporate/release significant amounts of oxygen in pure O2 or air atmospheres, at the moderate temperatures on the order of 200–300 °C. Characteristic temperatures of oxidation and reduction are dependent on r¯, therefore, it is possible to adjust conditions of the temperature swing operation by the chemical doping in Y1-xRxMnO3+δ with larger rare-earth elements. Crucial from a practical point of view, an increase of the oxidation temperature in such compounds greatly enhances the speed of the oxidation process (20 °C increase can reduce half-time of oxidation twice), which is found to be the limiting factor concerning the performance. Based on the comprehensive studies of the physicochemical properties of Y1-xRxMnO3+δ, the optimized Y0.95Pr0.05MnO3+δ composition is proposed, doped only with a small amount of more expensive praseodymium. The material exhibits excellent oxygen storage-related properties and is able for the effective production of oxygen in air by the thermal swing process, utilizing medium-/low-temperature industrial waste heat.
AB - It is documented that the mean radius r¯ of rare-earth cations occupying Y1-xRx sublattice in Y1-xRxMnO3+δ hexagonal oxides plays a decisive role in terms of thermodynamics and kinetics of reactivity of the materials with oxygen, and consequently, influences strongly the oxygen storage performance in thermal swing processes conducted in oxygen and air. Y1-xRxMnO3+δ samples with designed r¯ being close to the critical one, at the border of stability between hexagonal- and perovskite-type phases, can reversibly incorporate/release significant amounts of oxygen in pure O2 or air atmospheres, at the moderate temperatures on the order of 200–300 °C. Characteristic temperatures of oxidation and reduction are dependent on r¯, therefore, it is possible to adjust conditions of the temperature swing operation by the chemical doping in Y1-xRxMnO3+δ with larger rare-earth elements. Crucial from a practical point of view, an increase of the oxidation temperature in such compounds greatly enhances the speed of the oxidation process (20 °C increase can reduce half-time of oxidation twice), which is found to be the limiting factor concerning the performance. Based on the comprehensive studies of the physicochemical properties of Y1-xRxMnO3+δ, the optimized Y0.95Pr0.05MnO3+δ composition is proposed, doped only with a small amount of more expensive praseodymium. The material exhibits excellent oxygen storage-related properties and is able for the effective production of oxygen in air by the thermal swing process, utilizing medium-/low-temperature industrial waste heat.
KW - Oxygen storage and production
KW - Phase transformation kinetics
KW - Rare-earth
KW - Reduction and oxidation kinetics
KW - Thermal cycling
UR - http://www.scopus.com/inward/record.url?scp=85098451736&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85098451736&partnerID=8YFLogxK
U2 - 10.1016/j.actamat.2020.116544
DO - 10.1016/j.actamat.2020.116544
M3 - Article
AN - SCOPUS:85098451736
SN - 1359-6454
VL - 205
JO - Acta Materialia
JF - Acta Materialia
M1 - 116544
ER -