Phase behavior of Lennard-Jones particles in two dimensions

The phase diagram of the prototypical two-dimensional Lennard-Jones (LJ) system, while extensively investigated, is still debated. In particular, there are controversial results in the literature with regard to the existence of the hexatic phase and the melting scenario. Here we study the phase beha...

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Main Authors: Li, Yan-Wei, Ciamarra, Massimo Pica
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/145768
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1457682023-02-28T19:56:33Z Phase behavior of Lennard-Jones particles in two dimensions Li, Yan-Wei Ciamarra, Massimo Pica School of Physical and Mathematical Sciences Science::Physics Equation of State Liquid-solid Phase Transition The phase diagram of the prototypical two-dimensional Lennard-Jones (LJ) system, while extensively investigated, is still debated. In particular, there are controversial results in the literature with regard to the existence of the hexatic phase and the melting scenario. Here we study the phase behavior of two-dimensional range-limited LJ particles via large-scale numerical simulations. We demonstrate that at a high temperature, when the attraction in the potential plays a minor role, melting occurs via a continuous solid-hexatic transition followed by a first-order hexatic-fluid transition. The hexatic phase occurs in a density range that vanishes as the temperature decreases so that at low-temperature melting occurs via a first-order liquid-solid transition. The temperature where the hexatic phase disappears is well above the liquid-gas critical temperature. The evolution of the density of topological defects confirms this scenario. Ministry of Education (MOE) National Supercomputing Centre (NSCC) Singapore Published version We acknowledge support from the Singapore Ministry of Education through the Academic Research Fund (Tier 2) MOE2017-T2-1-066 (S), and are grateful to the National Supercomputing Centre (NSCC) of Singapore for providing computational resources. 2021-01-07T06:38:33Z 2021-01-07T06:38:33Z 2020 Journal Article Li, Y.-W., & Ciamarra, M. P. (2020). Phase behavior of Lennard-Jones particles in two dimensions. Physical Review E, 102(6), 062101-. doi:10.1103/physreve.102.062101 2470-0045 https://hdl.handle.net/10356/145768 10.1103/PhysRevE.102.062101 6 102 en MOE2017-T2-1-066 (S) Physical Review E © 2020 American Physical Society (APS). All rights reserved. This paper was published in Physical Review E and is made available with permission of American Physical Society (APS). application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Physics
Equation of State
Liquid-solid Phase Transition
spellingShingle Science::Physics
Equation of State
Liquid-solid Phase Transition
Li, Yan-Wei
Ciamarra, Massimo Pica
Phase behavior of Lennard-Jones particles in two dimensions
description The phase diagram of the prototypical two-dimensional Lennard-Jones (LJ) system, while extensively investigated, is still debated. In particular, there are controversial results in the literature with regard to the existence of the hexatic phase and the melting scenario. Here we study the phase behavior of two-dimensional range-limited LJ particles via large-scale numerical simulations. We demonstrate that at a high temperature, when the attraction in the potential plays a minor role, melting occurs via a continuous solid-hexatic transition followed by a first-order hexatic-fluid transition. The hexatic phase occurs in a density range that vanishes as the temperature decreases so that at low-temperature melting occurs via a first-order liquid-solid transition. The temperature where the hexatic phase disappears is well above the liquid-gas critical temperature. The evolution of the density of topological defects confirms this scenario.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Li, Yan-Wei
Ciamarra, Massimo Pica
format Article
author Li, Yan-Wei
Ciamarra, Massimo Pica
author_sort Li, Yan-Wei
title Phase behavior of Lennard-Jones particles in two dimensions
title_short Phase behavior of Lennard-Jones particles in two dimensions
title_full Phase behavior of Lennard-Jones particles in two dimensions
title_fullStr Phase behavior of Lennard-Jones particles in two dimensions
title_full_unstemmed Phase behavior of Lennard-Jones particles in two dimensions
title_sort phase behavior of lennard-jones particles in two dimensions
publishDate 2021
url https://hdl.handle.net/10356/145768
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