Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface

At the molecular scale, the definition of solid/fluid boundary is ambiguous since its defining precision is comparable to the size of the electron orbitals. It is important to figure out the sub-atomic-level solid/fluid boundary as the definition of the solid/fluid interface is related to estimating...

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Main Authors: Yechan Noh, Truong Vo, BoHung Kim
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/12/2439
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spelling doaj-64517029f1064396a58ae2889764377d2020-11-25T01:30:25ZengMDPI AGApplied Sciences2076-34172019-06-01912243910.3390/app9122439app9122439Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid InterfaceYechan Noh0Truong Vo1BoHung Kim2Department of Mechanical Science and Engineering, Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, USATechnical University of Kaiserslautern, Laboratory of Engineering Thermodynamics, Erwin-Schrodinger-Str. 44, 67663 Kaiserslautern, GermanyDepartment of Mechanical Engineering, University of Ulsan, Daehak-ro 93, Namgu, Ulsan 680-749, KoreaAt the molecular scale, the definition of solid/fluid boundary is ambiguous since its defining precision is comparable to the size of the electron orbitals. It is important to figure out the sub-atomic-level solid/fluid boundary as the definition of the solid/fluid interface is related to estimating various properties such as slip length, Kapitza resistance, confined volume, thermodynamic properties, and material properties. In this work, molecular dynamics (MD) simulations were conducted to show the effects of the solid/fluid boundary on estimating thermodynamic properties. Our results reveal that the different definitions of solid/fluid boundary can cause a considerable impact on quantitative analysis and even qualitative analysis of a nanoscale system. The solid/fluid boundary for Lennard-Jones atoms is determined within sub-atomic precision via heat transfer MD simulations and microscopic heat flux relation. The result shows that solid/fluid boundary is slightly shifted to the fluid regime as the temperature increase. We suggested a mathematical expression of solid/fluid boundary of LJ atom that is theoretically estimated by ignoring the thermal vibration. The results presented in this work are expected to improve the accuracy of analyzing nanoscale phenomena as well as the continuum-based models for nanoscale heat and mass transport.https://www.mdpi.com/2076-3417/9/12/2439solid/fluid boundarysolid/liquid interfacemolecular dynamicsLennard-Jones atoms
collection DOAJ
language English
format Article
sources DOAJ
author Yechan Noh
Truong Vo
BoHung Kim
spellingShingle Yechan Noh
Truong Vo
BoHung Kim
Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface
Applied Sciences
solid/fluid boundary
solid/liquid interface
molecular dynamics
Lennard-Jones atoms
author_facet Yechan Noh
Truong Vo
BoHung Kim
author_sort Yechan Noh
title Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface
title_short Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface
title_full Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface
title_fullStr Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface
title_full_unstemmed Subatomic-Level Solid/Fluid Boundary of Lennard-Jones Atoms: A Molecular Dynamics Study of Metal-Inert Fluid Interface
title_sort subatomic-level solid/fluid boundary of lennard-jones atoms: a molecular dynamics study of metal-inert fluid interface
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-06-01
description At the molecular scale, the definition of solid/fluid boundary is ambiguous since its defining precision is comparable to the size of the electron orbitals. It is important to figure out the sub-atomic-level solid/fluid boundary as the definition of the solid/fluid interface is related to estimating various properties such as slip length, Kapitza resistance, confined volume, thermodynamic properties, and material properties. In this work, molecular dynamics (MD) simulations were conducted to show the effects of the solid/fluid boundary on estimating thermodynamic properties. Our results reveal that the different definitions of solid/fluid boundary can cause a considerable impact on quantitative analysis and even qualitative analysis of a nanoscale system. The solid/fluid boundary for Lennard-Jones atoms is determined within sub-atomic precision via heat transfer MD simulations and microscopic heat flux relation. The result shows that solid/fluid boundary is slightly shifted to the fluid regime as the temperature increase. We suggested a mathematical expression of solid/fluid boundary of LJ atom that is theoretically estimated by ignoring the thermal vibration. The results presented in this work are expected to improve the accuracy of analyzing nanoscale phenomena as well as the continuum-based models for nanoscale heat and mass transport.
topic solid/fluid boundary
solid/liquid interface
molecular dynamics
Lennard-Jones atoms
url https://www.mdpi.com/2076-3417/9/12/2439
work_keys_str_mv AT yechannoh subatomiclevelsolidfluidboundaryoflennardjonesatomsamoleculardynamicsstudyofmetalinertfluidinterface
AT truongvo subatomiclevelsolidfluidboundaryoflennardjonesatomsamoleculardynamicsstudyofmetalinertfluidinterface
AT bohungkim subatomiclevelsolidfluidboundaryoflennardjonesatomsamoleculardynamicsstudyofmetalinertfluidinterface
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