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Gd3+ and Bi3+ co-substituted cubic zirconia; (Zr1−x−yGdxBiyO2−δ): a novel high κ relaxor dielectric and superior oxide-ion conductor

dc.contributor.authorYadav, Akanksha
dc.contributor.authorPrakash, Rajiv
dc.contributor.authorSingh, Preetam
dc.date.accessioned2023-04-21T06:35:03Z
dc.date.available2023-04-21T06:35:03Z
dc.date.issued2022-05
dc.descriptionThis paper is submitted by the author of IIT (BHU), Varanasien_US
dc.description.abstractSolid oxide fuel cells (SOFCs) offer several advantages over lower temperature polymeric membrane fuels cells (PMFCs) due to their multiple fuel flexibility and requirement of low purity hydrogen. In order to decrease the operating temperature of SOFCs and to overcome the high operating cost and materials degradation challenges, the Cubic phase of ZrO2 was stabilized with simultaneous substitution of Bi and Gd and the effect of co-doping on the oxide-ion conductivity of Zr1−x−yBixGdyO2−δ was studied to develop a superior electrolyte separator for SOFCs. Up to 30% Gd and 20% Bi were simultaneously substituted in the cubic ZrO2 lattice (Zr1−x−yGdxBiyO2−δ, x + y ≤ 0.4, x ≤ 0.3 and y ≤ 0.2) by employing a solution combustion method followed by multiple calcinations at 900 °C. Phase purity and composition of the material is confirmed by powder XRD and EDX measurements. The formation of an oxygen vacant Gd/Bi co-doped cubic zirconia lattice was also confirmed by Raman spectroscopy study. With the incorporation of Bi3+ and Gd3+ ions, the cubic Zr1−x−yBixGdyO2−δ phase showed relaxor type high κ dielectric behaviour (ϵ′ = 9725 at 600 °C at applied frequency 20 kHz for Zr0.6Bi0.2Gd0.2O1.8) with Tm approaching 600 °C. The high polarizability of the Bi3+ ion coupled with synergistic interaction of Bi and Gd in the host ZrO2 lattice seems to create the more labile oxide ion vacancies that enable superior oxide-ion transport resulting in high oxide ion conductivity (σo > 10−2 S cm−1, T > 500 °C for Zr0.6Bi0.2Gd0.2O1.8) at relatively lower temperatures.en_US
dc.description.sponsorshipAuthors thank Department of Ceramic Engineering, IIT (BHU) for its facility and support. Dr Preetam Singh thanks Science and Engineering Research Board (SERB) India for the financial support (project no. EMR/2016/006840). Ms Akanksha Yadav thanks IIT (BHU) Varanasi for financial support and research fellowship.en_US
dc.identifier.issn20462069
dc.identifier.urihttps://idr-sdlib.iitbhu.ac.in/handle/123456789/2170
dc.language.isoenen_US
dc.publisherRoyal Society of Chemistryen_US
dc.relation.ispartofseriesRSC Advances;Volume 12, Issue 23, Pages 14551 - 14561
dc.subjectBismuth compoundsen_US
dc.subjectElectrolytesen_US
dc.subjectGadoliniumen_US
dc.subjectGadolinium compoundsen_US
dc.subjectZirconiaen_US
dc.subjectCubic zirconiaen_US
dc.subjectLows-temperaturesen_US
dc.subjectMembrane fuel cellsen_US
dc.subjectMultiple fuelsen_US
dc.subjectOxide ion conductorsen_US
dc.subjectOxide ionsen_US
dc.subjectOxide-ion conductivityen_US
dc.subjectSolid-oxide fuel cellen_US
dc.subjectSolid oxide fuel cellsen_US
dc.titleGd3+ and Bi3+ co-substituted cubic zirconia; (Zr1−x−yGdxBiyO2−δ): a novel high κ relaxor dielectric and superior oxide-ion conductoren_US
dc.typeArticleen_US

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