Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds

Yıl: 2023 Cilt: 4 Sayı: 2 Sayfa Aralığı: 79 - 84 Metin Dili: İngilizce DOI: 10.51753/flsrt.1249167 İndeks Tarihi: 06-09-2023

Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds

Öz:
The effect of the Ti element on the incommensurately layered thermoelectric oxide material Ca3Co4O9 is investigated. This study compares the structural, morphological, thermoelectric, and magnetic properties of Ca3(Co3.7Ti0.3)O9 composition to the pristine Ca3Co4O9. No significant enhancement of the Seebeck coefficient compared to Ca3Co4O9 is observed in the Ti-doped sample. The magnetic properties of the pristine and Ti-doped Ca3Co4O9 are detailed, and the possible correlations between pristine and Ti-doped Ca3Co4O9 are established. In M-H measurements, the effect of Ti in low temperatures revealed a magnetic phase transition due to two sublattices exhibiting wavy behavior. For each sample, magnetic inhomogeneity in the long-range ferromagnetic ordering, which is clear almost before 19 K, is observed through FC and ZFC curves. The findings on the physical properties of both samples are discussed, considering the previously published results.
Anahtar Kelime: Structural and magnetic properties thermoelectricity Ti-doped Ca3Co4O9

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
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APA boyraz c (2023). Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. , 79 - 84. 10.51753/flsrt.1249167
Chicago boyraz cihat Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. (2023): 79 - 84. 10.51753/flsrt.1249167
MLA boyraz cihat Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. , 2023, ss.79 - 84. 10.51753/flsrt.1249167
AMA boyraz c Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. . 2023; 79 - 84. 10.51753/flsrt.1249167
Vancouver boyraz c Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. . 2023; 79 - 84. 10.51753/flsrt.1249167
IEEE boyraz c "Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds." , ss.79 - 84, 2023. 10.51753/flsrt.1249167
ISNAD boyraz, cihat. "Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds". (2023), 79-84. https://doi.org/10.51753/flsrt.1249167
APA boyraz c (2023). Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. Frontiers in Life Sciences and Related Technologies (Online), 4(2), 79 - 84. 10.51753/flsrt.1249167
Chicago boyraz cihat Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. Frontiers in Life Sciences and Related Technologies (Online) 4, no.2 (2023): 79 - 84. 10.51753/flsrt.1249167
MLA boyraz cihat Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. Frontiers in Life Sciences and Related Technologies (Online), vol.4, no.2, 2023, ss.79 - 84. 10.51753/flsrt.1249167
AMA boyraz c Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. Frontiers in Life Sciences and Related Technologies (Online). 2023; 4(2): 79 - 84. 10.51753/flsrt.1249167
Vancouver boyraz c Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds. Frontiers in Life Sciences and Related Technologies (Online). 2023; 4(2): 79 - 84. 10.51753/flsrt.1249167
IEEE boyraz c "Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds." Frontiers in Life Sciences and Related Technologies (Online), 4, ss.79 - 84, 2023. 10.51753/flsrt.1249167
ISNAD boyraz, cihat. "Structural, thermoelectric, and magnetic properties of pure and Ti-doped Ca3Co4O9 ceramic compounds". Frontiers in Life Sciences and Related Technologies (Online) 4/2 (2023), 79-84. https://doi.org/10.51753/flsrt.1249167