Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation

Proton ceramic fuel cells (PCFCs) represent a promising avenue for energy conversion, with their electrochemical performance heavily relying on the architecture of the cell particularly at the electrode counterparts. One of the measurements used to study their underlying chemical processes is via th...

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Published in:MATERIALS CHEMISTRY AND PHYSICS
Main Authors: Malik, Lidyayatty Abdul; Samat, Abdullah Abdul; Jani, Abdul Mutalib Md; Jamil, Zadariana; Othman, Nur Hidayati; Tseng, Chung-Jen; Osman, Nafisah
Format: Article
Language:English
Published: ELSEVIER SCIENCE SA 2025
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001411340400001
author Malik
Lidyayatty Abdul; Samat
Abdullah Abdul; Jani
Abdul Mutalib Md; Jamil
Zadariana; Othman
Nur Hidayati; Tseng
Chung-Jen; Osman
Nafisah
spellingShingle Malik
Lidyayatty Abdul; Samat
Abdullah Abdul; Jani
Abdul Mutalib Md; Jamil
Zadariana; Othman
Nur Hidayati; Tseng
Chung-Jen; Osman
Nafisah
Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
Materials Science
author_facet Malik
Lidyayatty Abdul; Samat
Abdullah Abdul; Jani
Abdul Mutalib Md; Jamil
Zadariana; Othman
Nur Hidayati; Tseng
Chung-Jen; Osman
Nafisah
author_sort Malik
spelling Malik, Lidyayatty Abdul; Samat, Abdullah Abdul; Jani, Abdul Mutalib Md; Jamil, Zadariana; Othman, Nur Hidayati; Tseng, Chung-Jen; Osman, Nafisah
Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
MATERIALS CHEMISTRY AND PHYSICS
English
Article
Proton ceramic fuel cells (PCFCs) represent a promising avenue for energy conversion, with their electrochemical performance heavily relying on the architecture of the cell particularly at the electrode counterparts. One of the measurements used to study their underlying chemical processes is via the electrochemical impedance spectroscopy (EIS) technique. This study aims to interpret 1-D electrode reaction routes of a single cell decorated with unmodified BCZY (p-BCZY) as an electrolyte, Ni-modified BaCe 0.54 Zr 0.36 Y 0.1 O 2.95 (Ni-m-BCZY) as anode substrate, Ni-p-BCZY (10:90) as anode functional layer 1 (AFL1), Ni-p-BCZY (30:70) as anode functional layer 2 (AFL2), and La 0.6 Sr 0.4 Co 0.2 Fe 0.8 O 3-delta (LSCF) as cathode side. Distribution relaxation times (DRT) corroborate with complex non-linear least squares (CNLS) analyses are being applied to illustrate 1-D electrode reaction routes within the fabricated cell. This approach allows for the precise elucidating of rate-limiting polarization processes and distinguishing between anodic and cathodic reactions. The extracted eight sub-processes represented by respective peaks are adopted to depict an illustration of the charge carrier's pathway for underlying understanding. At an operating temperature of 700 degrees C, the polarization resistance (Rp) obtained via DRT and CNLS is 1.02 S2 cm2 and 1.13 S2 cm2 respectively. To establish the CNLS and DRT analyses and 1-D interpretation of the cell; (a) impedance data at T = 600 degrees C and T = 500 degrees C and (b) cross-section FESEM images are also discussed.
ELSEVIER SCIENCE SA
0254-0584
1879-3312
2025
333

10.1016/j.matchemphys.2024.130353
Materials Science

WOS:001411340400001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001411340400001
title Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
title_short Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
title_full Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
title_fullStr Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
title_full_unstemmed Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
title_sort Electrode reaction routes analyses of modified Ni-BCZY anode via distribution relaxation times: 1-D interpretation
container_title MATERIALS CHEMISTRY AND PHYSICS
language English
format Article
description Proton ceramic fuel cells (PCFCs) represent a promising avenue for energy conversion, with their electrochemical performance heavily relying on the architecture of the cell particularly at the electrode counterparts. One of the measurements used to study their underlying chemical processes is via the electrochemical impedance spectroscopy (EIS) technique. This study aims to interpret 1-D electrode reaction routes of a single cell decorated with unmodified BCZY (p-BCZY) as an electrolyte, Ni-modified BaCe 0.54 Zr 0.36 Y 0.1 O 2.95 (Ni-m-BCZY) as anode substrate, Ni-p-BCZY (10:90) as anode functional layer 1 (AFL1), Ni-p-BCZY (30:70) as anode functional layer 2 (AFL2), and La 0.6 Sr 0.4 Co 0.2 Fe 0.8 O 3-delta (LSCF) as cathode side. Distribution relaxation times (DRT) corroborate with complex non-linear least squares (CNLS) analyses are being applied to illustrate 1-D electrode reaction routes within the fabricated cell. This approach allows for the precise elucidating of rate-limiting polarization processes and distinguishing between anodic and cathodic reactions. The extracted eight sub-processes represented by respective peaks are adopted to depict an illustration of the charge carrier's pathway for underlying understanding. At an operating temperature of 700 degrees C, the polarization resistance (Rp) obtained via DRT and CNLS is 1.02 S2 cm2 and 1.13 S2 cm2 respectively. To establish the CNLS and DRT analyses and 1-D interpretation of the cell; (a) impedance data at T = 600 degrees C and T = 500 degrees C and (b) cross-section FESEM images are also discussed.
publisher ELSEVIER SCIENCE SA
issn 0254-0584
1879-3312
publishDate 2025
container_volume 333
container_issue
doi_str_mv 10.1016/j.matchemphys.2024.130353
topic Materials Science
topic_facet Materials Science
accesstype
id WOS:001411340400001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001411340400001
record_format wos
collection Web of Science (WoS)
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