Spin-Crossover nanomaterials have been actively studied in the past decade for their potential technological applications in sensing, actuating, and information processing devices. Unfortunately, an increasing number of the metallic centers become inactive at reduced sizes, presumably due to surface effects, limiting their switching ability and thus the scope of applications. Here we report on the investigation of "frozen" metallic centers in nanoparticles (2-80 nm size) of the spin-crossover compound Fe(pyrazine)[Ni(CN) 4 ]. Magnetic measurements reveal both high-spin and low-spin residual fractions at atmospheric pressure. A pressure-induced transition of the high-spin residue is observed at around 1.5 GPa by synchrotron Mössbauer spectroscopy. We show that it is equivalent to a downshift of the transition temperature by ca. 400 K due to the size reduction. Unexpectedly, small-angle neutron scattering experiments demonstrate that these high-spin residual centers are not confined to the surface, which contradicts general theoretical considerations.

Mikolasek, M., Ridier, K., Bessas, D., Cerantola, V., Felix, G., Chaboussant, G., et al. (2019). Phase Stability of Spin-Crossover Nanoparticles Investigated by Synchrotron Mossbauer Spectroscopy and Small-Angle Neutron Scattering. THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 10(7), 1511-1515 [10.1021/acs.jpclett.9b00335].

Phase Stability of Spin-Crossover Nanoparticles Investigated by Synchrotron Mossbauer Spectroscopy and Small-Angle Neutron Scattering

Cerantola V;
2019

Abstract

Spin-Crossover nanomaterials have been actively studied in the past decade for their potential technological applications in sensing, actuating, and information processing devices. Unfortunately, an increasing number of the metallic centers become inactive at reduced sizes, presumably due to surface effects, limiting their switching ability and thus the scope of applications. Here we report on the investigation of "frozen" metallic centers in nanoparticles (2-80 nm size) of the spin-crossover compound Fe(pyrazine)[Ni(CN) 4 ]. Magnetic measurements reveal both high-spin and low-spin residual fractions at atmospheric pressure. A pressure-induced transition of the high-spin residue is observed at around 1.5 GPa by synchrotron Mössbauer spectroscopy. We show that it is equivalent to a downshift of the transition temperature by ca. 400 K due to the size reduction. Unexpectedly, small-angle neutron scattering experiments demonstrate that these high-spin residual centers are not confined to the surface, which contradicts general theoretical considerations.
Articolo in rivista - Articolo scientifico
Mössbauer spectroscopy; spin transition; nanoparticles; Small angle neutron scattering; diamond anvil cell
English
2019
10
7
1511
1515
none
Mikolasek, M., Ridier, K., Bessas, D., Cerantola, V., Felix, G., Chaboussant, G., et al. (2019). Phase Stability of Spin-Crossover Nanoparticles Investigated by Synchrotron Mossbauer Spectroscopy and Small-Angle Neutron Scattering. THE JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 10(7), 1511-1515 [10.1021/acs.jpclett.9b00335].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/397734
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