Ibrahim, Ahmed A. S.; Bochmann, Arne; Löhnert, Romy; Mieller, Björn; Wilde, Lutz; Capraro, Beate; Stelter, Michael; Töpfer, Jörg:
Performance Enhancement of Ca3Co4O9-based Transverse Multilayer Thermoelectric Generators for Low-Power Applications
In: Journal of the American Ceramic Society : incorporating Advanced ceramic materials and communications, Jg. 109 (2026), Heft 3, Artikel e70656
2026Artikel/Aufsatz in ZeitschriftOA Hybrid
Chemisch-Geowissenschaftliche FakultätChemisch-Geowissenschaftliche Fakultät » Institut für Technische Chemie und UmweltchemieWissenschaftliche Zentren » Center for Energy and Environmental Chemistry Jena (CEEC)
Titel in Englisch:
Performance Enhancement of Ca3Co4O9-based Transverse Multilayer Thermoelectric Generators for Low-Power Applications
Autor*in:
Ibrahim, Ahmed A. S.FSU
GND
1346473870
SCOPUS
59161246400
Sonstiges
der Hochschule zugeordnet
;
Bochmann, Arne
SCOPUS
23466487800
;
Löhnert, Romy
SCOPUS
37098874800
;
Mieller, Björn
SCOPUS
57193580752
;
Wilde, Lutz
SCOPUS
60513645700
;
Capraro, Beate
SCOPUS
56021461200
;
Stelter, MichaelFSU
GND
123586992
ORCID
0000-0001-5194-0201ORCID iD
SCOPUS
6603849265
Sonstiges
der Hochschule zugeordnet
;
Töpfer, Jörg
SCOPUS
55985246800
Sonstiges
korrespondierende*r Autor*in
Erscheinungsjahr:
2026
Open-Access-Publikationsweg:
OA Hybrid
Scopus ID
Sprache des Textes:
Englisch
Schlagwort, Thema:
calcium cobalt oxide ; Low-Temperature Corfired Ceramics ; transverse multilayer thermoelectric generators ; transverse thermoelectric effect
Datenträgertyp:
Online-Ressource
Ressourcentyp:
Text
Lizenztyp:
CC BY 4.0
Access Rights:
Open Access
Peer Reviewed:
Ja
Teil der Statistik:
Ja

Abstract in Englisch:

Transverse thermoelectric generators (TTEG) enable conversion of thermal into electrical energy with perpendicular directions of the applied temperature gradient and the induced thermoelectric voltage. We report on the fabrication of transverse multilayer thermoelectric generators (TMLTEG) based on p-type Ca ₃ Co ₄ O ₉ (CCO) ceramic tapes and printed silver which were conventionally sintered (CS) in air at 920°C or using pressure-assisted sintering (PAS) at 920°C and 1.5 MPa. The thermoelectric performance of TMLTEGs was evaluated using analytical calculations and simulations. The transverse thermoelectric power factor PF tr and thermoelectric figure-of-merit ZT tr of an artificial layered structure composed of CCO and silver were calculated and simulated as functions of layers tilt angle φ and metal-to-ceramic thickness ratio ν t . TMLTEG devices with various CCO layer thicknesses of 150 µm, 100 µm, or 33 µm were fabricated and cofired at 920°C in air, which exhibit power outputs of 2.3 mW, 3.2 mW, and 4.1 mW at ΔT = 160 K, respectively. TMLTEGs which were cofired using PAS show a higher power density of 16.4 mW/cm ³ at ΔT = 225 K. This enhancement in power (≈ 80%) is crucial for thermoelectric modules comprising multiple TMLTEG devices. The device measurements were compared with 3D simulations.