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RESEARCH PRODUCT

Colossal barocaloric effects in the complex hydride Li$_{2}$B$_{12}$H$_{12}$

Shin Ichi OrimoDewei ChuDaniel ErrandoneaShigeyuki TakagiTamio IkeshojiKartik SauClaudio Cazorla

subject

DiffusionFOS: Physical sciencesThermodynamics02 engineering and technology010402 general chemistry01 natural sciences7. Clean energyIsothermal processEntropy (classical thermodynamics)Phase (matter)Adiabatic processPhysicsCondensed Matter - Materials ScienceMultidisciplinary:Física [Àrees temàtiques de la UPC]HydrideMaterials Science (cond-mat.mtrl-sci)Ciència dels materials021001 nanoscience & nanotechnologyCondensed Matter PhysicsMatèria condensadaMaterials science0104 chemical sciences3. Good healthHysteresis13. Climate action0210 nano-technologyEnergy (signal processing)

description

Traditional refrigeration technologies based on compression cycles of greenhouse gases pose serious threats to the environment and cannot be downscaled to electronic device dimensions. Solid-state cooling exploits the thermal response of caloric materials to external fields and represents a promising alternative to current refrigeration methods. However, most of the caloric materials known to date present relatively small adiabatic temperature changes ($|\Delta T| \sim 1$ K) and/or limiting irreversibility issues resulting from significant phase-transition hysteresis. Here, we predict the existence of colossal barocaloric effects (isothermal entropy changes of $|\Delta S| \sim 100$ JK$^{-1}$kg$^{-1}$) in the energy material Li$_{2}$B$_{12}$H$_{12}$ by means of molecular dynamics simulations. Specifically, we estimate $|\Delta S| = 387$ JK$^{-1}$kg$^{-1}$ and $|\Delta T| = 26$ K for an applied pressure of $P = 0.4$ GPa at $T = 475$ K. The disclosed colossal barocaloric effects are originated by an order-disorder phase transformation that exhibits a fair degree of reversibility and involves coexisting Li$^{+}$ diffusion and (BH)$_{12}^{-2}$ reorientational motion at high temperatures.

http://arxiv.org/abs/2008.07102