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Published in Computational Materials Science, 2019
In this paper, we propose a method to control the collapsed nanostructurings of single-walled carbon nanotubes (SWCNTs) by helium storage and the key mechanism is elaborated from the potential energy aspect. The molecular dynamics simulation shows that enough helium atoms could restore the collapsing configuration of (40, 40) carbon nanotubes back to the circular cross section.
Published in Journal of Applied Physics, 2019
In this paper, the mechanical behaviors of recently synthesized monolayer ternary transitional metal dichalogenides (TMDs) MoS2xTe2(1 − x) (0 < x < 1) under tensile loading are studied by classical molecular dynamics simulations. Particular attention is paid to the fundamental mechanical properties such as Young’s modulus and fracture behaviors of monolayer MoS2xTe2(1 − x).
Published in Nanotechnology, 2020
Freestanding indentation is a widely used method to characterise the elastic properties of two-dimensional (2D) materials. However, many controversies and confusion remain in this field due to the lack of appropriate theoretical models in describing the indentation responses of 2D materials. Taking the multilayer gallium telluride (GaTe) as an example, in this paper we conduct a series of experiments and simulations to achieve a comprehensive understanding of its freestanding indentation behaviours.
Published in The Journal of Physical Chemistry C, 2020
Metal–organic frameworks (MOFs) are promising candidates as natural gas adsorbents because of their porous feature and high structural tunability. In the gas adsorption/desorption process, MOFs are often under complicated physical environments, such as varied pressure and temperature; however, limited attention has been paid to the effect of pressure on their thermal properties. In this work, taking ZIF-8 with four different functional groups (−H, −CH3, −Cl, and −Br) as an example, we investigate the influence of functional group substitution and pressure on the thermal conductivity of MOFs through equilibrium molecular dynamics simulations.
Published in Computational Materials Science, 2020
As a new class of one-dimensional (1D) transition-metal monochalcogenides (TMMs) nanowires (NWs), the recently synthesized MoS NWs exhibit potential applications in two-dimensional integrated circuit. However, their mechanical behaviors remain almost unexplored. In this paper, the mechanical behaviors of MoS NWs under tensile loading are studied by classical molecular dynamics simulations together with first-principles calculations.
Published in Computational Materials Science, 2020
Cell defects are inevitable during the fabrication of carbon honeycombs (CHCs), which, however, were tacitly ignored in previous studies. In this work, the effects of defects including Stone-Wales (SW) defect and single-wall vacancy (SV) defect on the mechanical and thermal properties of CHCs are investigated by using molecular dynamics simulations.
Published in Microporous and Mesoporous Materials, 2020
Since MOFs are often upon varied pressures in gas adsorption/desorption process, understanding the mechanical stability of these ultraporous frameworks becomes extremely crucial. In this paper, taking the isoreticular DUT material as an example, the relation between the mechanical stability of isoreticular MOFs and their ligands is investigated by real-time molecular dynamics simulations as well as three state of art computational approaches including Born stability criteria, anisotropy in elastic moduli and pressure-versus-volume equations.
Published in Carbon, 2021
In this paper, we conduct a comprehensive investigation on the thermal transport in one-dimensional (1D) van der Waals (vdW) heterostructures by using non-equilibrium molecular dynamics simulations. As for the considered 1D vdW heterostructures having a base of (40,40) carbon nanotube (CNT), we find that the boron nitride nanotube (BNNT) coating can increase the thermal conductance of inner CNT base by 36%, while the molybdenum disulfide nanotube (MSNT) coating can reduce the thermal conductance by 47%.
Published in The Journal of Physical Chemistry C, 2021
Soft porous crystals (SPCs) or flexible metal–organic frameworks have great potential applications in gas storage and separation, in which SPCs can undergo phase transition due to external stimuli. Thus, understanding the effect of phase transition on the thermal transport in SPCs becomes extremely crucial because the latent heat generated in aforementioned applications is needed to be effectively removed. In this paper, taking the isorecticular DUT series as an example, the thermal transport property of SPCs during the phase transition from a large pore (lp) phase to a narrow pore (np) phase is comprehensively investigated by molecular dynamics simulations together with the Gree–Kubo method.
Published in Carbon, 2021
The recently discovered carbon honeycombs (CHCs) and boron nitride honeycombs (BNHCs) are found to have the similar molecular structures but different thermal properties. Thus, through appropriately patching together CHCs and BNHCs, the hybrid carbon-boron nitride honeycombs (C–BNHCs) with tunable thermal conductivity can be achieved. In this paper, the machine learning (ML) method together with molecular dynamics simulations is employed to study the thermal transport property of C–BNHCs, and also utilized to design the structures of C–BNHCs for the specific thermal conductivity.
Published in International Journal of Heat and Mass Transfer, 2021
The biphenylene network with periodically arranged four-, six-, and eight-membered rings has been successfully synthesized in very recent experiments. This novel two-dimensional (2D) carbon allotrope has potentials in applications of lithium storage and carbon-based circuitry. Understanding the thermal transport properties of biphenylene network is of critical importance for the performance and reliability of its practical applications. To this end, the thermal transport in biphenylene network is comprehensively investigated in this paper with the aid of molecular dynamics simulations together with first-principles calculations.
Published in Journal of Physical Chemistry Letters, 2022
The deformation and fracture mechanism of two-dimensional (2D) materials are still unclear and not thoroughly investigated. Given this, mechanical properties and mechanisms are explored on example of gallium telluride (GaTe), a promising 2D semiconductor with an ultrahigh photoresponsivity and a high flexibility. Hereby, the mechanical properties of both substrate-supported and suspended GaTe multilayers were investigated through Berkovich-tip nanoindentation instead of the commonly used AFM-based nanoindentation method.
Published in Physical Chemistry Chemical Physics, 2022
Molybdenum disulphide (MoS2) mounted on silicon dioxide (SiO2) constitutes the fundamental functional components of many nanodevices, but its mechanical properties, which are crucial for the device design and fabrication, remain almost unexplored. Here, the mechanical properties of the multilayer MoS2/SiO2 system are investigated via nanoindentation experiments and molecular dynamics simulations. In terms of the mechanical properties, a comparative study of MoS2/SiO2 and graphene/SiO2 systems is presented.
Published in Materials Today Physics, 2022
Two-dimensional violet phosphorene (VP) nanosheets are promising semiconductor materials with unique cross structures distinct from those of their allotropes such as black phosphorene and blue phosphorene, but their mechanical behaviors remain almost unexplored. By using the first-principles calculations, in this paper we investigate the mechanical behaviors of monolayer, bilayer, and bulk VP under uniaxial tension. A phase transformation from the open-pore phase to closed-pore phase is observed in VP structures when under a specific tensile strain.
Published in The Journal of Chemical Physics, 2022
We present our latest advancements of machine-learned potentials (MLPs) based on the neuroevolution potential (NEP) framework introduced in [Fan et al., Phys. Rev. B 104, 104309 (2021)] and their implementation in the open-source package GPUMD.We increase the accuracy of NEP models both by improving the radial functions in the atomic-environment descriptor using a linear combination of Chebyshev basis functions and by extending the angular descriptor with some four-body and five-body contributions as in the atomic cluster expansion approach.
Published in Composites Science and Technology, 2022
Long-term illumination can damage the mechanical properties of high strength fiber composites, resulting in the material aging and loss of mechanical properties. To reveal the mechanism of ultraviolet- (UV-) induced damage, in this paper, a nonlinear constitutive model is developed to describe the elastic and inelastic deformation behavior of high strength fibers under UV-radiation and mechanical loadings.
Published in International Journal of Heat and Mass Transfer, 2022
Two-dimensional (2D) lateral superlattices, a typical artificial nano-phononic crystal, have stimulated widespread interests and potential application prospects in terms of their physically interesting features. Herein, we have found wave-particle crossover of phonon transport in the graphene (Gr)/2D polyaniline (C N) lateral superlattices, which is an indication of a transition in the phonon transport mechanism from the incoherent to coherent regime.
Published in International Journal of Heat and Mass Transfer, 2022
Phosphorus has diverse chemical bonds, and even in its two-dimensional form, there are three stable allotropes: black phosphorene (Black-P), blue phosphorene (Blue-P), and violet phosphorene (Violet-P). Due to the complexity of these structures, no efficient and accurate classical interatomic potential has been developed for them. In this paper, we develop an efficient machine-learned neuroevolution potential model for these allotropes and apply it to study thermal transport in them via extensive molecular dynamics (MD) simulations.
Published in Extreme Mechanics Letters, 2022
In this work, we comprehensively study the mechanical properties of the newly synthesized monolayer quasi-hexagonal-phase fullerene (qHPF) membrane [Hou et al., 2022] under uniaxial tension by using quantum mechanical density-functional-theory (DFT) calculations and molecular dynamics (MD) simulations with a machine-learned neuroevolution potential (NEP).
Published in The Journal of Physical Chemistry C, 2023
The defects can naturally exist or be artificially designed in metal–organic frameworks (MOFs), which could significantly affect their mechanical properties. In this paper, the elastic properties of HKUST-1 with randomly distributed missing linker defects are investigated by reactive molecular dynamics simulations together with the strain-fluctuation method.
Published in International Journal of Heat and Mass Transfer, 2023
Recently a novel two-dimensional (2D) C$_{60}$ based crystal called quasi-hexagonal-phase fullerene (QHPF) has been fabricated and demonstrated to be a promising candidate for 2D electronic devices [Hou et al. Nature 606, 507–510 (2022)]. We construct an accurate and transferable machine-learned potential to study heat transport and related properties of this material, with a comparison to the face-centered-cubic bulk-phase fullerene (BPF).
Published in Physical Chemistry Chemical Physics, 2023
The mechanical and thermal properties of a hybrid nanotube consisting of a coaxial carbon nanotube (CNT) inside a graphyne nanotube (GNT), i.e., CNT@GNT, are investigated in this paper by using molecular dynamics simulations.
Published in Journal of Chemical Physics, 2023
We propose an approach that can accurately predict the heat conductivity of liquid water.
Published in ACS Applied Materials & Interfaces, 2023
We develop a set of accurate yet highly efficient machine-learned potentials for three typical MOFs and perform extensive MD simulations to study thermal transport in the three MOFs. We found the phonon mean free paths (MFPs) of MOFs can reach the sub-micrometer scale in the low-frequency region. The sub-micrometer phonon MFPs are also found to be correlated with a moderate temperature dependence of thermal conductivity between those in typical crystalline and amorphous materials.
Published in ChemPhysChem, 2023
In order to explain the effect of the indentation depth on the hardness of MOFs, we conducted nanoindentation simulations on HKUST-1 by using reactive molecular dynamics simulations. Our simulations reveal that the HKUST-1 material near the indenter can transform from the parent crystalline phase to a new amorphous phase due to the high pressure generated, while its counterpart far from the indenter remains in the crystalline phase.
Published in Physical Review B, 2023
Using the homogeneous nonequilibrium MD method and a proper quantum-statistical correction to the classical MD results, quantitative agreement with experiments is achieved for the thermal conductivities of bulk and 190-nm-thick a-SiO2 films over a wide range of temperatures.
Published in Nanoscale, 2023
With the aid of the obtained NEP, molecular dynamics (MD) simulations together with a strain-fluctuation method were employed to evaluate the elastic constants of the considered 2D COFs at different temperatures. The elastic constants of COF-1 and COF-5 monolayers were found to decrease with an increase in the temperature, though they were almost isotropic irrespective of the temperature. The thermally induced softening of 2D COFs below a critical temperature was observed, which is mainly attributed to their inherent ripple configurations at finite temperatures, while above the critical temperature, the damping effect of anharmonic vibrations became the dominant factor. Based on the proposed mechanisms, analytical models were developed for capturing the temperature dependence of elastic constants, which were found to agree with the MD simulation results well.
Published in Journal of Physics: Condensed Matter, 2023
We propose to combine the neuroevolution potential (NEP) with the popular D3 correction to achieve a unified NEP-D3 model that can simultaneously model relatively short-ranged bonded interactions and relatively long-ranged dispersion interactions.
Published in Physical Review B, 2024
We find that the thermal conductivity of HKUST-1 decreases with compressive strain and increases with tensile strain, which is contradictory to the classical Liebfried and Schlömann theory, i.e., the thermal conductivity of crystals should increase with applied compression.
Published in Journal of Applied Physics, 2024
In this work, we develop machine-learned neuroevolution potentials (NEPs) for single-crystalline $\beta$-Ga$_2$O$_3$ and $\kappa$-Ga$_2$O$_3$, and demonstrate their accuracy in modeling thermal transport properties. Combining NEP-driven homogeneous non-equilibrium molecular dynamics (HNEMD) simulations with tensor analysis, we determine the spatial distributions of lattice thermal conductivities (LTCs) for two Ga$_2$O$_3$ crystals, showing dissimilar thermal behaviors.
Published in Journal of Physics: Condensed Matter, 2024
We propose an efficient approach for simultaneous prediction of thermal and electronic transport properties in complex materials.
Published in ACS Nano, 2024
We present a machine-learning potential (MLP) for bilayer defected graphene, utilizing state-of-the-art graph neural networks trained against many-body dispersion corrected density functional theory calculations under iterative configuration space exploration.
Published in Journal of Applied Physics, 2024
In this mini-review and tutorial, we delve into the fundamentals of heat transport, explore pertinent MD simulation methods, and survey the applications of MLPs in MD simulations of heat transport. Furthermore, we provide a step-by-step tutorial on developing MLPs for highly efficient and predictive heat transport simulations, utilizing the neuroevolution potentials as implemented in the GPUMD package.
Published in The Journal of Chemical Physics, 2024
We reveal that the fitting errors in the machine-learned forces against the reference ones are responsible for the underestimated LTC as they constitute external perturbations to the interatomic forces. Since the force errors of a NEP model and the random forces in the Langevin thermostat both follow a Gaussian distribution, we propose an approach to correcting the LTC by intentionally introducing different levels of force noises via the Langevin thermostat and then extrapolating to the limit of zero force error.
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Undergraduate course, University 1, Department, 2014
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Workshop, University 1, Department, 2015
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