Publicación

Shape, size, pressure and matrix effects on 2D spin crossover nanomaterials studied using density of states obtained by dynamic programming

Jorge Linarès · Catherine Cazelles · Pierre‐Richard Dahoo · Devan Sohier · Thomas Dufaud · Kamel Boukheddaden
2020 Computational Materials Science DOI: 10.1016/j.commatsci.2020.110061

Resumen

In the present work, numerical simulations based on a new algorithm specific for 2D configurational topology of spin crossover nanoparticles embedded in a matrix are presented and discussed in the framework of the Ising-like model taking into account for short- (J) and long-range (G) interactions as for surface effects (L). The new algorithm is applied to calculate the density of states for each macro-state, which is then used to calculate exactly the thermal behavior of spin-crossover nanoparticles under an applied pressure. We find that the pressure plays the role of a conjugate parameter of the temperature. Thus, increasing pressure is somehow equivalent to reducing the temperature.

Autores y colaboradores

Authors

Jorge Linarès
Catherine Cazelles
Pierre‐Richard Dahoo
Devan Sohier
Thomas Dufaud
Kamel Boukheddaden

Palabras clave

Dynamic programming Nanomaterials Phase transitions Spin crossover