Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects

In isolated bimetallic nanoscale systems the limit amount of matter and surface-induced size effects can change the thermodynamics of first-order phase transformation. In this paper we present theoretical modification of Gibbs free energy concept describing first-order phase transformation of binary...

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Main Author: Aram S. Shirinyan
Format: Article
Language:English
Published: Beilstein-Institut 2015-08-01
Series:Beilstein Journal of Nanotechnology
Subjects:
Online Access:https://doi.org/10.3762/bjnano.6.185
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spelling doaj-ac582075afd74a2ebc4871599eecb50b2020-11-25T00:44:45ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862015-08-01611811182010.3762/bjnano.6.1852190-4286-6-185Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effectsAram S. Shirinyan0“Physicochemical materials science” center of National Academy of Sciences of Ukraine and Kyiv National University, Physics Faculty, Kyiv Taras Shevchenko National University, vul. Volodymyrska 61, 01601, Kyiv, Ukraine, phone: +380972984512, fax: +380445262326In isolated bimetallic nanoscale systems the limit amount of matter and surface-induced size effects can change the thermodynamics of first-order phase transformation. In this paper we present theoretical modification of Gibbs free energy concept describing first-order phase transformation of binary alloyed nanoparticles taking into account size effects as well as depletion and hysteresis effects. In such a way the hysteresis in a form of nonsymmetry for forth and back transforming paths takes place; compositional splitting and the loops-like splitted path on the size dependent temperature–composition phase diagram occur. Our calculations for individual Cu–Ni nanoparticle show that one must differentiate the solubility curves and the equilibrium loops (discussed here in term of solidification and melting loops). For the first time we have calculated and present here on the temperature–composition phase diagram the nanomelting loop at the size of 80 nm and the nanosolidification loop at the size of 25 nm for an individual Cu–Ni nanoparticle. So we observe the difference between the size-dependent phase diagram and solubility diagram, between two-phase equilibrium curves and solubility curves; also intersection of nanoliquidus and nanosolidus is available. These findings lead to the necessity to reconsider such basic concepts in materials science as phase diagram and solubility diagram.https://doi.org/10.3762/bjnano.6.185chemical depletionnanomelting and nanosolidification loopsphase diagram of isolated nanoparticlesurface-induced size effectthermodynamic approach
collection DOAJ
language English
format Article
sources DOAJ
author Aram S. Shirinyan
spellingShingle Aram S. Shirinyan
Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects
Beilstein Journal of Nanotechnology
chemical depletion
nanomelting and nanosolidification loops
phase diagram of isolated nanoparticle
surface-induced size effect
thermodynamic approach
author_facet Aram S. Shirinyan
author_sort Aram S. Shirinyan
title Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects
title_short Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects
title_full Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects
title_fullStr Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects
title_full_unstemmed Two-phase equilibrium states in individual Cu–Ni nanoparticles: size, depletion and hysteresis effects
title_sort two-phase equilibrium states in individual cu–ni nanoparticles: size, depletion and hysteresis effects
publisher Beilstein-Institut
series Beilstein Journal of Nanotechnology
issn 2190-4286
publishDate 2015-08-01
description In isolated bimetallic nanoscale systems the limit amount of matter and surface-induced size effects can change the thermodynamics of first-order phase transformation. In this paper we present theoretical modification of Gibbs free energy concept describing first-order phase transformation of binary alloyed nanoparticles taking into account size effects as well as depletion and hysteresis effects. In such a way the hysteresis in a form of nonsymmetry for forth and back transforming paths takes place; compositional splitting and the loops-like splitted path on the size dependent temperature–composition phase diagram occur. Our calculations for individual Cu–Ni nanoparticle show that one must differentiate the solubility curves and the equilibrium loops (discussed here in term of solidification and melting loops). For the first time we have calculated and present here on the temperature–composition phase diagram the nanomelting loop at the size of 80 nm and the nanosolidification loop at the size of 25 nm for an individual Cu–Ni nanoparticle. So we observe the difference between the size-dependent phase diagram and solubility diagram, between two-phase equilibrium curves and solubility curves; also intersection of nanoliquidus and nanosolidus is available. These findings lead to the necessity to reconsider such basic concepts in materials science as phase diagram and solubility diagram.
topic chemical depletion
nanomelting and nanosolidification loops
phase diagram of isolated nanoparticle
surface-induced size effect
thermodynamic approach
url https://doi.org/10.3762/bjnano.6.185
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