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Modeling nonequilibrium dynamics of phase transitions at the nanoscale: Application to spin-crossover
Author(s) -
Sang Tae Park,
Renske M. van der Veen
Publication year - 2017
Publication title -
structural dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.415
H-Index - 29
ISSN - 2329-7778
DOI - 10.1063/1.4985058
Subject(s) - spin crossover , phase transition , non equilibrium thermodynamics , materials science , nanoparticle , condensed matter physics , thermal conductivity , chemical physics , phase (matter) , crossover , thermodynamics , nanotechnology , physics , quantum mechanics , artificial intelligence , computer science , composite material
In this article, we present a continuum mechanics based approach for modeling thermally induced single-nanoparticle phase transitions studied in ultrafast electron microscopy. By using coupled differential equations describing heat transfer and the kinetics of the phase transition, we determine the major factors governing the time scales and efficiencies of thermal switching in individual spin-crossover nanoparticles, such as the thermal properties of the (graphite) substrate, the particle thickness, and the interfacial thermal contact conductance between the substrate and the nanoparticle. By comparing the simulated dynamics with the experimental single-particle diffraction time profiles, we demonstrate that the proposed non-equilibrium phase transition model can fully account for the observed switching dynamics.

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