| Literature DB >> 33527567 |
Michela Romanini1, YiXu Wang2,3, Kübra Gürpinar4, Gladys Ornelas2,5, Pol Lloveras6, Yan Zhang2, Wenkai Zheng7, Maria Barrio6, Araceli Aznar6, Adrià Gràcia-Condal1, Baris Emre8, Orhan Atakol4, Catalin Popescu9, Hu Zhang3, Yi Long3, Luis Balicas7, Josep Lluís Tamarit6, Antoni Planes1, Michael Shatruk2,7, Lluís Mañosa1.
Abstract
A giant barocaloric effect (BCE) in a molecular material Fe3 (bntrz)6 (tcnset)6 (FBT) is reported, where bntrz = 4-(benzyl)-1,2,4-triazole and tcnset = 1,1,3,3-tetracyano-2-thioethylepropenide. The crystal structure of FBT contains a trinuclear transition metal complex that undergoes an abrupt spin-state switching between the state in which all three FeII centers are in the high-spin (S = 2) electronic configuration and the state in which all of them are in the low-spin (S = 0) configuration. Despite the strongly cooperative nature of the spin transition, it proceeds with a negligible hysteresis and a large volumetric change, suggesting that FBT should be a good candidate for producing a large BCE. Powder X-ray diffraction and calorimetry reveal that the material is highly susceptible to applied pressure, as the transition temperature spans the range from 318 at ambient pressure to 383 K at 2.6 kbar. Despite the large shift in the spin-transition temperature, its nonhysteretic character is maintained under applied pressure. Such behavior leads to a remarkably large and reversible BCE, characterized by an isothermal entropy change of 120 J kg-1 K-1 and an adiabatic temperature change of 35 K, which are among the highest reversible values reported for any caloric material thus far.Entities:
Keywords: barocaloric; mechanocaloric; spin crossover
Year: 2021 PMID: 33527567 DOI: 10.1002/adma.202008076
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849