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Energy-Efficient Elastocaloric Cooling by Flexibly and Reversibly Transferring Interface in Magnetic Shape-Memory Alloys

  • Yang Li
  • , Dewei Zhao
  • , Jian Liu
  • , Suxin Qian
  • , Zongbin Li
  • , Weimin Gan
  • , Xian Chen
  • CAS - Ningbo Institute of Material Technology and Engineering
  • University of Chinese Academy of Sciences
  • Northeastern University China
  • Helmholtz-Zentrum Hereon
  • Hong Kong University of Science and Technology

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

Elastocaloric cooling is currently under extensive study owing to its great potential to replace the conventional vapor-compression technique. In this work, by employing multiscale characterization approaches, including in situ neutron diffraction in a loading frame, in situ transmission electron microscopy observation at different temperatures, in situ synchrotron X-ray Laue microdiffraction, and high-resolution infrared thermal imaging, we have investigated the thermal and stress-induced martensitic transformation, the stability of superelastic behavior and the associated elastocaloric effect for a Heusler-type Ni50.0Fe19.0Ga27.1Co3.9 single crystal. On the basis of transformation from cubic austenite into monoclinic martensite with a flexibly and reversibly transferring interface, this unique single crystal exhibits a giant elastocaloric effect of 11 K and ultralow fatigue behavior during above 12 000 mechanical cycles. The numerical simulation shows that the Ni50.0Fe19.0Ga27.1Co3.9 alloy offers 18% energy saving potential and 70% cooling capacity enhancement potential compared to the conventional shape-memory nitinol alloy in a single-stage elastocaloric cooling system, making it a great candidate for energy-efficient air conditioner applications.

Original languageEnglish
Pages (from-to)25438-25445
Number of pages8
JournalACS Applied Materials and Interfaces
Volume10
Issue number30
DOIs
StatePublished - 1 Aug 2018

Keywords

  • Ni-Fe-Ga-Co
  • elastocaloric effect
  • magnetic shape-memory alloys
  • martensitic transformation
  • superelasticity

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