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Size-dependent evolution of the atomic vibrational density of states and thermodynamic properties of isolated Fe nanoparticles.

Authors :
Cuenya, B. Roldan
Ono, L. K.
Croy, J. R.
Paredis, K.
Kara, A.
Heinrich, H.
Zhao, J.
Alp, E. E.
DelaRiva, A. T.
Datye, A.
Stach, E. A.
Keune, W.
Source :
Physical Review B: Condensed Matter & Materials Physics. Oct2012, Vol. 86 Issue 16, p1-11. 11p.
Publication Year :
2012

Abstract

We have gained insight into the internal degree of atomic disorder in isolated size-selected Fe nanoparticles (NPs) (~2-6 ran in size) supported on Si02/Si(l 11) and Al2O3(0001) from precise measurements of the low-energy (low-£) part of the phonon density of states [PDOS, g(E)] via 57Fe nuclear resonant inelastic x-ray scattering (NRIXS) combined with transmission electron microscopy (TEM) measurements. An intriguing size-dependent trend was observed, namely, an increase of the low-£ excess density of phonon states (as compared to the PDOS of bulk bcc Fe) with increasing NP size. This is unexpected, since usually the enhancement of the density of low-E phonon modes is attributed to low-coordinated atoms at the NP surface, whose relative content increases with decreasing NP size due to the increase in the surface-to-volume ratio. Our NPs are covered by a Ti-coating layer, which essentially restores the local neighborhood of surface Fe atoms towards bulk-like coordination, reducing the surface effect. Our data can be qualitatively explained by the existence of low-coordinated Fe atoms located at grain boundaries or other defects with structural disorder in the interior of the large NPs (~3-6 nm), while our small NPs (~2 nm) are single grain and, therefore, characterized by a higher degree of structural order. This conclusion is corroborated by the observation of Debye behavior at low energy [g(E) ~ E" with n ~ 2] for the small NPs, but non-Debye behavior (with n ~ 1.4) for the large NPs. The PDOS was used to determine thermodynamic properties of the Fe NPs. Finally, our results demonstrate that, in combination with TEM, NRIXS is a suitable technique to investigate atomic disorder/defects in NPs. We anticipate that our findings are universal for similar NPs with bcc structure. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10980121
Volume :
86
Issue :
16
Database :
Academic Search Index
Journal :
Physical Review B: Condensed Matter & Materials Physics
Publication Type :
Academic Journal
Accession number :
83990842
Full Text :
https://doi.org/10.1103/PhysRevB.86.165406