Bond stiffening in small nanoclusters and its consequences for mechanical and thermal properties

Pushpa, Raghani ; Waghmare, Umesh ; Narasimhan, Shobhana (2008) Bond stiffening in small nanoclusters and its consequences for mechanical and thermal properties Physical Review B: Condensed Matter and Materials Physics, 77 (4). 045427_1-045427_6. ISSN 1098-0121

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Official URL: http://prb.aps.org/abstract/PRB/v77/i4/e045427

Related URL: http://dx.doi.org/10.1103/PhysRevB.77.045427

Abstract

We have used density functional perturbation theory to investigate the stiffness of interatomic bonds in small clusters of Si, Sn, and Pb. As the number of atoms in a cluster is decreased, there is a marked shortening and stiffening of bonds. The competing factors of fewer but stiffer bonds in clusters result in softer elastic moduli but higher (average) frequencies as size is decreased, with clear signatures of universal scaling relationships. The stiffness of bonds is found to scale as the inverse tenth power of length. A significant role in understanding trends is played by the coordination number of the bulk structure: The higher this is, the lesser is the relative softening of elastic constants and the greater the relative damping of vibrational amplitudes for clusters compared to the bulk. Our results could provide a framework for understanding recent reports that some clusters remain solid above the bulk melting temperature. Our results suggest that Sn and Pb clusters (but not Si clusters) are more thermally stable than the bulk.

Item Type:Article
Source:Copyright of this article belongs to The American Physical Society.
ID Code:59378
Deposited On:06 Sep 2011 05:32
Last Modified:06 Sep 2011 05:32

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