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Transforming common soft magnets into a next-generation thermoelectric conversion materials by 3 minutes heat treatment

May 9, 2024
in Technology and Engineering
Denise Maddox
By Denise Maddox Scienmag Editorial Profile - Mechanical Engineering
Reading Time: 3 mins read
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Transforming common soft magnets into a next-generation thermoelectric conversion materials
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1. A research team from NIMS and Nagoya University has demonstrated that an iron-based amorphous alloy, widely used as a soft magnetic material in transformers and motors, can be transformed into a “transverse” thermoelectric conversion material that converts electric and thermal currents in orthogonal directions, with just a short period of heat treatment. This is the first example that highlights the importance of microstructure engineering in the development of transverse thermoelectric conversion materials, and provides new design guidelines for materials development to realize environmentally friendly power generation and thermal management technologies using magnetic materials.

Enhancement of transverse thermoelectric conversion performance by nanostructure engineering

Credit: Hossein Sepehri-Amin
National Institute for Materials Science,
Ken-ichi Uchida
National Institute for Materials Science,
Hosei Nagano
Nagoya University

1. A research team from NIMS and Nagoya University has demonstrated that an iron-based amorphous alloy, widely used as a soft magnetic material in transformers and motors, can be transformed into a “transverse” thermoelectric conversion material that converts electric and thermal currents in orthogonal directions, with just a short period of heat treatment. This is the first example that highlights the importance of microstructure engineering in the development of transverse thermoelectric conversion materials, and provides new design guidelines for materials development to realize environmentally friendly power generation and thermal management technologies using magnetic materials.

2. The use of transverse thermoelectric effects in magnetic materials is expected to simplify the structure of thermoelectric conversion devices compared to the longitudinal thermoelectric effects, where electric and thermal currents are converted in parallel directions. This simplification can lead to enhanced versatility and durability of the devices, as well as cost reduction. The main focus of the development of magnetic materials for transverse thermoelectric conversion has been the exploration of new alloys based on electronic structure, with no research on the microstructure within the materials.

3. The team has now demonstrated that a simple three-minutes heat treatment of an iron-based amorphous alloy, without changing the average composition of the material, significantly improves the performance of the anomalous Nernst effect—one of the transverse thermoelectric effects. The anomalous Nernst coefficient, obtained at the optimal heat treatment temperature, showed the highest value known among magnetic amorphous alloys, and the improvement was found to be significantly influenced by nano-sized copper precipitates within the alloy. This result suggests that not only the electronic structure and composition of the material but also the design and control of the microstructure are important for enhancing the anomalous Nernst coefficient.

4. The developed magnetic material can be easily mass-produced and scaled up, and it is also flexible. By further developing magnetic materials with even higher anomalous Nernst coefficients through microstructure control, the team aims to apply this technology to energy conversions in electronic devices and to thermal sensing technologies.

***

5. This research was conducted by Postdoctoral Researcher Ravi Gautam, Researcher Takamasa Hirai, Deputy Center Director Tadakatsu Ohkubo, Distinguished Group Leader Ken-ichi Uchida, Group Leader Hossein Sepehri Amin at NIMS Magnetic and Spintronics Materials Research Center, Designated Assistant Professor Abdulkareem Alasli and Professor Housei Nagano from Nagoya University, as part of the JST Strategic Basic Research Programs ERATO “Uchida Magnetic Thermal Management Materials Project” (Research Director: Ken-ichi Uchida, Grant Number: JPMJER2201).

6. The results of this study were published online in the journal Nature Communications at 19:00 Japan time on March 27, 2024.



Journal

Nature Communications

DOI

10.1038/s41467-024-46475-6

Method of Research

Experimental study

Subject of Research

Not applicable

Article Title

Creation of flexible spin-caloritronic material with giant transverse thermoelectric conversion by nanostructure engineering

Article Publication Date

27-Mar-2024

Subject of Research: Technology and Engineering

Article Title: Transforming common soft magnets into a next-generation thermoelectric conversion materials by 3 minutes heat treatment

Article References: Original research article

Image Credits: AI Generated

DOI: Not provided

Keywords: Not provided

Cite Scienmag News

Denise Maddox. (May 9, 2024). Transforming common soft magnets into a next-generation thermoelectric conversion materials by 3 minutes heat treatment. Scienmag. https://scienmag.com/transforming-common-soft-magnets-into-a-next-generation-thermoelectric-conversion-materials-by-3-minutes-heat-treatment/

Denise Maddox. "Transforming common soft magnets into a next-generation thermoelectric conversion materials by 3 minutes heat treatment." Scienmag, 9 May 2024, https://scienmag.com/transforming-common-soft-magnets-into-a-next-generation-thermoelectric-conversion-materials-by-3-minutes-heat-treatment/. Accessed 4 September 2026.

Denise Maddox. "Transforming common soft magnets into a next-generation thermoelectric conversion materials by 3 minutes heat treatment." Scienmag. May 9, 2024. https://scienmag.com/transforming-common-soft-magnets-into-a-next-generation-thermoelectric-conversion-materials-by-3-minutes-heat-treatment/

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