INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS

Solid Oxide Fuel Cells (SOFCs) have gained tremendous amount of attraction as an alternate source of electrical energy in the recent decades. The purpose of this research is to develop cathode material for use in solid oxide fuel cells which demonstrates desired properties of high electrical conduct...

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Main Author: Gajjala, Sai Ram
Format: Others
Published: OpenSIUC 2017
Online Access:https://opensiuc.lib.siu.edu/theses/2099
https://opensiuc.lib.siu.edu/cgi/viewcontent.cgi?article=3113&context=theses
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spelling ndltd-siu.edu-oai-opensiuc.lib.siu.edu-theses-31132018-12-20T04:41:37Z INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS Gajjala, Sai Ram Solid Oxide Fuel Cells (SOFCs) have gained tremendous amount of attraction as an alternate source of electrical energy in the recent decades. The purpose of this research is to develop cathode material for use in solid oxide fuel cells which demonstrates desired properties of high electrical conductivity, excellent chemical stability at high temperatures, desirable thermal expansion characteristics and which can be easily manufactured by sintering in conditions acceptable with other cell components. In the present research, stoichiometry’s of La1-xCax(Fe0.25Co0.25Ni0.25Cr0.25)O3 (x=0,0.1,0.2,0.3) (LCFCNC) were synthesized by using polymerizable precursor method proposed by pechini [1]. The structure and morphology of the powder samples were characterized by X-ray diffraction and SEM. X-ray diffraction results revealed the formation of single phase orthorhombic distorted perovskite structure in all four samples. Prepared powders were made into pellets and were sintered in air at 1400°C for 2 hours. SEM analysis showed the densification of the pellets with the addition of calcium. AC resistance bridge was used to measure the electrical conductivity of the samples in air in the temperature range of 100-900°C. Study of electrical conductivity showed an increasing trend in electrical conductivity with the increase in temperature and the amount of calcium doped on A-site up to 20mol% and the sample with calcium 30mol% on A-site, showed sharp increase in electrical conductivity reaching a maximum of 50 S/cm at 800°C, showing that the present materials can be used as cathode materials in SOFC. 2017-05-01T07:00:00Z text application/pdf https://opensiuc.lib.siu.edu/theses/2099 https://opensiuc.lib.siu.edu/cgi/viewcontent.cgi?article=3113&context=theses Theses OpenSIUC
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format Others
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description Solid Oxide Fuel Cells (SOFCs) have gained tremendous amount of attraction as an alternate source of electrical energy in the recent decades. The purpose of this research is to develop cathode material for use in solid oxide fuel cells which demonstrates desired properties of high electrical conductivity, excellent chemical stability at high temperatures, desirable thermal expansion characteristics and which can be easily manufactured by sintering in conditions acceptable with other cell components. In the present research, stoichiometry’s of La1-xCax(Fe0.25Co0.25Ni0.25Cr0.25)O3 (x=0,0.1,0.2,0.3) (LCFCNC) were synthesized by using polymerizable precursor method proposed by pechini [1]. The structure and morphology of the powder samples were characterized by X-ray diffraction and SEM. X-ray diffraction results revealed the formation of single phase orthorhombic distorted perovskite structure in all four samples. Prepared powders were made into pellets and were sintered in air at 1400°C for 2 hours. SEM analysis showed the densification of the pellets with the addition of calcium. AC resistance bridge was used to measure the electrical conductivity of the samples in air in the temperature range of 100-900°C. Study of electrical conductivity showed an increasing trend in electrical conductivity with the increase in temperature and the amount of calcium doped on A-site up to 20mol% and the sample with calcium 30mol% on A-site, showed sharp increase in electrical conductivity reaching a maximum of 50 S/cm at 800°C, showing that the present materials can be used as cathode materials in SOFC.
author Gajjala, Sai Ram
spellingShingle Gajjala, Sai Ram
INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS
author_facet Gajjala, Sai Ram
author_sort Gajjala, Sai Ram
title INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS
title_short INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS
title_full INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS
title_fullStr INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS
title_full_unstemmed INVESTIGATION OF (La1-X,CaX)(Ni0.25Fe0.25Cr0.25Co0.25)O3 FOR SOLID OXIDE FUEL CELLS CATHODE MATERIALS
title_sort investigation of (la1-x,cax)(ni0.25fe0.25cr0.25co0.25)o3 for solid oxide fuel cells cathode materials
publisher OpenSIUC
publishDate 2017
url https://opensiuc.lib.siu.edu/theses/2099
https://opensiuc.lib.siu.edu/cgi/viewcontent.cgi?article=3113&context=theses
work_keys_str_mv AT gajjalasairam investigationofla1xcaxni025fe025cr025co025o3forsolidoxidefuelcellscathodematerials
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