Impact of Spin-Entropy on the Thermoelectric Properties of a 2D Magnet
Publication date
2024-04-23
Authors
Canetta, Alessandra
Volosheniuk, Serhii
Satheesh, Sayooj
Alvarinhas Batista, Jose Pedro
Castellano, Alois
Conte, Riccardo
Chica, Daniel George
Watanabe, Kenji
Taniguchi, Takashi
Roy, Xavier
Editors
Advisors
Supervisors
Document Type
Article
Metadata
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License
taverne
Abstract
Heat-to-charge conversion efficiency of thermoelectric materials is closely linked to the entropy per charge carrier. Thus, magnetic materials are promising building blocks for highly efficient energy harvesters as their carrier entropy is boosted by a spin degree of freedom. In this work, we investigate how this spin-entropy impacts heat-to-charge conversion in the A-type antiferromagnet CrSBr. We perform simultaneous measurements of electrical conductance and thermocurrent while changing magnetic order using the temperature and magnetic field as tuning parameters. We find a strong enhancement of the thermoelectric power factor at around the Néel temperature. We further reveal that the power factor at low temperatures can be increased by up to 600% upon applying a magnetic field. Our results demonstrate that the thermoelectric properties of 2D magnets can be optimized by exploiting the sizable impact of spin-entropy and confirm thermoelectric measurements as a sensitive tool to investigate subtle magnetic phase transitions in low-dimensional magnets.
Keywords
2D magnetism, CrSBr, Entropy, Thermoelectric, Taverne
Citation
Canetta, A, Volosheniuk, S, Satheesh, S, Alvarinhas Batista, J P, Castellano, A, Conte, R, Chica, D G, Watanabe, K, Taniguchi, T, Roy, X, van der Zant, H S J, Burghard, M, Verstraete, M J & Gehring, P 2024, 'Impact of Spin-Entropy on the Thermoelectric Properties of a 2D Magnet', Nano Letters, vol. 24, no. 22, pp. 6513-6520. https://doi.org/10.1021/acs.nanolett.4c00809