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Ultrasensitive barocaloric material for room-temperature solid-state refrigeration

Materials Science 2022-04-29 v1

Abstract

Solid-state refrigeration based on caloric effects is an energetically efficient and environmentally friendly technology, which is deemed as a potential alternative to the conventional vapor-compression technology. One of the greatest obstacles to the real application is the huge driving fields. Here, we report a giant barocaloric effect in inorganic NH4I with maximum entropy changes of {\Delta}S_BCE^max ~89 J K-1 kg-1 around room temperature, associated with the orientationally order-disorder phase transition. The phase transition temperature, Tt, varies dramatically with pressure in a rate of dTt/dP ~0.81 K MPa-1, which leads to a very much small saturation driving pressure of {\Delta}P ~20 MPa, an unprecedentedly large caloric strength of |{\Delta}S_BCE^max/{\Delta}P| ~4.45 J K-1 kg-1 MPa-1, as well as a broad temperature window of ~68 K under an 80 MPa driving pressure. Comprehensive characterization of the crystal structure and dynamics by neutron scattering measurements reveals a strong reorientation-vibration coupling that is responsible for the large pressure sensitivity of Tt. This work is expected to advance the practical application of barocaloric refrigeration.

Keywords

Cite

@article{arxiv.2110.11563,
  title  = {Ultrasensitive barocaloric material for room-temperature solid-state refrigeration},
  author = {Qingyong Ren and Ji Qi and Dehong Yu and Wenli Song and Bao Yuan and Tianhao Wan and Weijun Ren and Zhidong Zhang and Xin Tong and Bing Li},
  journal= {arXiv preprint arXiv:2110.11563},
  year   = {2022}
}

Comments

18pages, 5 figures

R2 v1 2026-06-24T07:05:42.991Z