Designing flexible hard magnetic materials for zero-magnetic-field operation of the anomalous Nernst effect

Fuente: arXiv
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Main Authors: Park, Sang J., Modak, Rajkumar, Gautam, Ravi, Alasli, Abdulkareem, Hirai, Takamasa, Ando, Fuyuki, Nagano, Hosei, Sepehri-Amin, Hossein, Uchida, Ken-ichi
Format: Preprint
Published: 2024
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author Park, Sang J.
Modak, Rajkumar
Gautam, Ravi
Alasli, Abdulkareem
Hirai, Takamasa
Ando, Fuyuki
Nagano, Hosei
Sepehri-Amin, Hossein
Uchida, Ken-ichi
author_facet Park, Sang J.
Modak, Rajkumar
Gautam, Ravi
Alasli, Abdulkareem
Hirai, Takamasa
Ando, Fuyuki
Nagano, Hosei
Sepehri-Amin, Hossein
Uchida, Ken-ichi
contents The global shift towards a carbon-neutral society has accelerated the demand for green energy, driving research into efficient technologies for harvesting energy from low-grade waste heat. Recently, transverse thermoelectrics based on the anomalous Nernst effect (ANE) has gained attention due to their simple device structure, scalability, and manufacturing-friendly nature. While topological single crystals and epitaxial films have been focused for enhancing the ANE-driven thermoelectric performance, further improvements in material design are necessary for practical applications. Here, we report an easy-to-implement strategy for designing mechanically flexible and magnetically hard transverse thermoelectric materials by creating amorphous-crystalline heterogeneous composites. We fabricated and optimized the heterogeneous composites through controlled heat treatment, achieving significant enhancements in the coercivity and anomalous Nernst coefficient, while maintaining flexibility. Additionally, using the developed material, we constructed a single-material-based coiled device and demonstrated the zero-field operation of the ANE-based energy harvesting from curved heat sources. These results validate the feasibility of using the ANE-based flexible materials for energy harvesting applications.
format Preprint
id arxiv_https___arxiv_org_abs_2412_08853
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Designing flexible hard magnetic materials for zero-magnetic-field operation of the anomalous Nernst effect
Park, Sang J.
Modak, Rajkumar
Gautam, Ravi
Alasli, Abdulkareem
Hirai, Takamasa
Ando, Fuyuki
Nagano, Hosei
Sepehri-Amin, Hossein
Uchida, Ken-ichi
Materials Science
The global shift towards a carbon-neutral society has accelerated the demand for green energy, driving research into efficient technologies for harvesting energy from low-grade waste heat. Recently, transverse thermoelectrics based on the anomalous Nernst effect (ANE) has gained attention due to their simple device structure, scalability, and manufacturing-friendly nature. While topological single crystals and epitaxial films have been focused for enhancing the ANE-driven thermoelectric performance, further improvements in material design are necessary for practical applications. Here, we report an easy-to-implement strategy for designing mechanically flexible and magnetically hard transverse thermoelectric materials by creating amorphous-crystalline heterogeneous composites. We fabricated and optimized the heterogeneous composites through controlled heat treatment, achieving significant enhancements in the coercivity and anomalous Nernst coefficient, while maintaining flexibility. Additionally, using the developed material, we constructed a single-material-based coiled device and demonstrated the zero-field operation of the ANE-based energy harvesting from curved heat sources. These results validate the feasibility of using the ANE-based flexible materials for energy harvesting applications.
title Designing flexible hard magnetic materials for zero-magnetic-field operation of the anomalous Nernst effect
topic Materials Science
url https://arxiv.org/abs/2412.08853