Molecular Dynamics Simulation of ZnS using Interatomic Potentials

Author(s):  
M. Ajmal Khan ◽  
Badriah S. A. Sultan ◽  
Nadir Bouarissa ◽  
M. A. Wahab ◽  
Ali Al-Hajry ◽  
...  
Author(s):  
Mohammad Moulod ◽  
Gisuk Hwang

Fundamental understanding of the water in graphene is crucial to optimally design and operate the sustainable energy, water desalination, and bio-medical systems. A numerous atomic-scale studies have been reported, primarily articulating the surface interactions (interatomic potentials) between the water and graphene. However, a systematic comparative study among the various interatomic potentials is rare, especially for the water transport confined in the graphene nanostructure. In this study, the effects of different interatomic potentials and gap sizes on water self-diffusivity are investigated using the molecular dynamics simulation at T = 300 K. The water is confined in the rigid graphene nanogap with the various gap sizes Lz = 0.7 to 4.17 nm, using SPC/E and TIP3P water models. The water self-diffusivity is calculated using the mean squared displacement approach. It is found that the water self-diffusivity in the confined region is lower than that of the bulk water, and it decreases as the gap size decreases and the surface energy increases. Also, the water self-diffusivity nearly linearly decreases with the increasing surface energy to reach the bulk water self-diffusivity at zero surface energy. The obtained results provide a roadmap to fundamentally understand the water transport properties in the graphene geometries and surface interactions.


2019 ◽  
pp. 253-288 ◽  
Author(s):  
Ivan A. Kruglov ◽  
Pavel E. Dolgirev ◽  
Artem R. Oganov ◽  
Arslan B. Mazitov ◽  
Sergey N. Pozdnyakov ◽  
...  

2009 ◽  
Vol 255 (24) ◽  
pp. 9592-9596 ◽  
Author(s):  
V.V. Zhakhovskii ◽  
N.A. Inogamov ◽  
Yu.V. Petrov ◽  
S.I. Ashitkov ◽  
K. Nishihara

2001 ◽  
Vol 08 (05) ◽  
pp. 471-475 ◽  
Author(s):  
X. P. XIE ◽  
M. H. LIANG ◽  
Z. M. CHOO ◽  
S. LI

We have performed a comparative study of Si (001) surface reconstruction employing molecular dynamics simulation using the interatomic potentials of Stillinger–Weber, Tersoff and Bazant–Kaxiras. Simulations were carried out for temperatures at 300 K and 1000 K using each of these three potentials. At 300 K, the three potentials were found to generate surface features comprising mainly the simple (2 × 1) reconstruction. At 1000 K, more complex reconstruction similar to the p (2 × 2) and c (2 × 2) patterns was observed on the surfaces of Stillinger–Weber and Tersoff crystals while the surface generated on Bazant–Kaxiras crystal is characterized by disorderliness with no identifiable pattern of reconstruction.


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