Rational control spin-crossover particle size: from nano- to micro-rods of [Fe(Htrz)2(trz)] (BF4)
Langue
en
Article de revue
Ce document a été publié dans
Magnetochemistry. 2016, vol. 2, n° 1, p. 10
MDPI
Résumé en anglais
The spin-crossover (SCO) materials based on iron (II) and triazole ligands can change their spin state under an external perturbation such as temperature, pressure or light irradiation, exhibiting notably large hysteresis ...Lire la suite >
The spin-crossover (SCO) materials based on iron (II) and triazole ligands can change their spin state under an external perturbation such as temperature, pressure or light irradiation, exhibiting notably large hysteresis in their physical properties’ transitions. If these aspects are investigated for decades, it is only in the recent years that the design of SCO particles has attracted the attention of the scientific community with increasing interest focusing on the possibility of getting wide ranges of sizes and shapes of nanoparticles. In this context, we rationalized the reverse-micellar synthesis, thanks to the scrutiny of the experimental parameters, to produce SCO particles with controlled size and shape. This approach has been performed for the reference one-dimensional (1D) polymeric spin-crossover compound of formula [Fe(Htrz)2(trz)](BF4). A synergetic effect of both time and temperature is revealed as being of paramount importance to control the final particle size. Consequently, under well-defined experimental conditions, we can now offer rod-shaped SCO particles with lengths ranging from 75 to 1000 nm.< Réduire
Mots clés en anglais
spin crossover (SCO)
Fe(II) coordination chemistry
nanostructured SCO materials
reverse micelle
1H-1 2 4-triazole
nanoparticles
rod-like particles
time
temperature
Project ANR
Éléments de mémoires multifonctionnels utilisant des connections supramoléculaires auto assemblées - ANR-11-BS08-0006
Origine
Importé de halUnités de recherche