Designing magnetocaloric materials for hydrogen liquefaction with light rare-earth Laves phases
arXiv:2301.12773 · doi:10.1088/2515-7655/accb0b
Abstract
Magnetocaloric hydrogen liquefaction could be a "game-changer" for liquid hydrogen industry. Although heavy rare-earth-based magnetocaloric materials show strong magnetocaloric effects in the temperature range required by hydrogen liquefaction (77 ~ 20 K), the high resource criticality of the heavy rare-earth elements is a major obstacle for upscaling this emerging liquefaction technology. In contrast, the higher abundances of the light rare-earth elements make their alloys highly appealing for magnetocaloric hydrogen liquefaction. Via a mean-field approach, it is demonstrated that tuning the Curie temperature () of an idealized light rare-earth-based magnetocaloric material towards lower cryogenic temperatures leads to larger maximum magnetic and adiabatic temperature changes ( and ). Especially in the vicinity of the condensation point of hydrogen (20 K), and of the optimized light rare-earth-based material are predicted to show significantly large values. Following the mean-field approach and taking the chemical and physical similarities of the light rare-earth elements into consideration, a method of designing light rare-earth intermetallic compounds for hydrogen liquefaction is proposed: tunning of a rare-earth alloy to approach 20 K by mixing light rare-earth elements with different de Gennes factors. By mixing Nd and Pr in Laves phase , and Pr and Ce in Laves phase , a fully light rare-earth intermetallic series with large magnetocaloric effects covering the temperature range required by hydrogen liquefaction is developed, demonstrating a competitive maximum effect compared to the heavy rare-earth compound .
References in corpus (5)
- Tutorial: A Beginner's Guide to Interpreting Magnetic Susceptibility Data with the Curie-Weiss Law
- Applicability of scaling behavior and power laws in the analysis of the magnetocaloric effect in second-order phase transition materials
- A study on rare-earth Laves phases for magnetocaloric liquefaction of hydrogen
- History dependence of directly observed magnetocaloric effects in (Mn, Fe)As
- Effect of Dy substitution in the giant magnetocaloric properties of HoB
Cited by in corpus (3)
- A matter of performance & criticality: a review of rare-earth-based magnetocaloric intermetallic compounds for hydrogen liquefaction
- The role of Debye temperature in achieving large adiabatic temperature changes at cryogenic temperatures: a case study on
- Electronic and magnetic properties of light rare-earth cubic Laves compounds derived from XMCD experiments