Enhanced Heat Transfer for Thermomagnetic Generation in Low‐grade Waste Heat Harvesting

H Haodong Chen (Center for Plant Biology, State Key Laboratory of Green Biomanufacturing, School of Life Sciences, Tsinghua University) M Mingze Liu Z Ziyuan Yu K Kaiming Qiao M Muhammad Zeeshan Naeem (School of Materials Science and Engineering University of Science and Technology of Beijing Beijing 100083 P R China) J Jingyi Liu L Longlong Xie Y Yao Liu M Miaofeng Huang (School of Materials Science and Engineering Natural Science Basic Experimental Center University of Science and Technology Beijing Beijing 100083 P R China) Z Zhenxing Li (State Key Laboratory of Heavy Oil Processing, College of New Energy and Materials) J Jun Shen (Department of Radiology) F Fengxia Hu (Beijing National Laboratory for Condensed Matter and Institute of Physics) B Baogen Shen (Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences) H Hu Zhang (State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering)

Abstract

Abstract Thermomagnetic generation (TMG) is a potential technology for harvesting low‐grade waste heat. However, the limited heat transfer of TMG materials constrains their practical performance. In this study, low‐melting point metal indium (In) with high thermal conductivity is introduced into a Ni─Mn─In Heusler alloy to fabricate Ni─Mn─In/In TMG composites. The thermal conductivity increased significantly from 14.86 W m −1 K −1 for the Ni─Mn─In alloy to 65.2 W m −1 K −1 for the Ni─Mn─In/In composite. The composite containing 40 wt.% In (In40) exhibits superior TMG performance, with an average voltage of 2.38 mV g −1 , a maximum power density of 0.433 µW g −1 , and a cost index of 0.116 µW per CNY, which are 3.8, 2.4, and 1.1 times higher than those of the Ni─Mn─In alloy. By further changing the geometry, a 2 mm thick In40 with 7 holes achieves a thermal conductivity 15 times higher and a power generation index 8 orders of magnitude greater than those of other reported TMG materials. The combination of enhanced TMG performance and improved heat transfer, along with zero thermal hysteresis, good machinability, high corrosion resistance, and long‐term cycle stability, makes this composite a strong candidate for low‐grade waste heat recovery applications.

Article Details

Volume / Issue Vol. 37, Issue 21
Published May 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

H

Haodong Chen

Center for Plant Biology, State Key Laboratory of Green Biomanufacturing, School of Life Sciences, Tsinghua University

M

Mingze Liu

Z

Ziyuan Yu

K

Kaiming Qiao

M

Muhammad Zeeshan Naeem

School of Materials Science and Engineering University of Science and Technology of Beijing Beijing 100083 P R China

J

Jingyi Liu

L

Longlong Xie

Y

Yao Liu

M

Miaofeng Huang

School of Materials Science and Engineering Natural Science Basic Experimental Center University of Science and Technology Beijing Beijing 100083 P R China

Z

Zhenxing Li

State Key Laboratory of Heavy Oil Processing, College of New Energy and Materials

J

Jun Shen

Department of Radiology

F

Fengxia Hu

Beijing National Laboratory for Condensed Matter and Institute of Physics

B

Baogen Shen

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences

H

Hu Zhang

State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering