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On Minimum Size of Nanoparticle when Difference Disappears between Solid and Liquid Phases

Authors: Magomedov M.N.  Published: 08.09.2013
Published in issue: #1(44)/2012  
DOI:

 
Category: Physics  
Keywords: nanocrystal, surface, crystal-to-liquid phase transition, melting point, temperature of crystallization, hysteresis

Based on the model of a nanocrystal as a rectangular parallelepiped with variable surface shape, the expressions for the melting point Tm and the temperature of the crystallization start TN < Tm and for specific (per atom) jumps of the entropy Δs, the latent heat Δh = Tm Δs, and the volume Δv are derived for the crystal-to-liquid phase transition. The dependence of these functions on the number of atoms N and on the nanoparticle shape is investigated. It is shown that at the certain size N0, the functions Δs, Δh, and Δv become equal to zero and a hysteresis between the melting point and a temperature of crystallization start disappears: TN(N0) = Tm(N0). In such a cluster, the physical difference between phases vanishes. This size for nanocopper lies within an interval of N0 = 49...309 and increases when the nanoparticle shape deviates from the shape of most stable energy.