Cost-effective materials are essential for large-scale deployment. The emerging magnetocaloric hydrogen liquefaction technology could transform the liquid hydrogen industry due to its potential in achieving higher efficiency. Most studies of the cryogenic magnetocaloric effect (MCE) have focused on resource-critical rare-earth-based compounds. Here we report on an ionic magnetocaloric compound FeCl2 which is based on ultralow-cost elements, as a candidate working material for hydrogen liquefaction. FeCl2 shows both inverse and conventional MCE. From 0 to 1.5 T, the inverse effect yields a positive magnetic entropy change (ΔST) of about 5 J/kg/K near 20 K, then declines toward zero at higher fields. In contrast, the conventional (negative) response strengthens with field. The ΔST reaches 18.6 J/kg/K near 20 K in magnetic fields of 5 T. This value exceeds most light rare-earth-based compounds and approaches that of heavy rare-earth-based compounds. In magnetic fields of 5 T, the adiabatic temperature change reaches about 3.6 K. The large ΔST, along with the low cost of the elements in FeCl2, are prerequisites for inexpensive industrial-scale production, giving the prospect of a practical magnetocaloric candidate for hydrogen liquefaction in the 20 ∼ 77 K temperature window.
@article{arxiv.2510.20458,
title = {Ultralow-Cost magnetocaloric compound for Cryogenic Cooling},
author = {Wei Liu and Benjamin Theisel and Yulia Klunnikova and Konstantin Skokov and Oliver Gutfleisch},
journal= {arXiv preprint arXiv:2510.20458},
year = {2025}
}