scholarly journals Efficient Performance of Chiral Boron Nitride Nanotubes as Suitable Selector for Separation of Ibuprofen Enantiomers Using DFT-D3 Calculations and Molecular Dynamics Simulation

Author(s):  
Melahatsadat Rasoolidanesh ◽  
Masoud Darvish Ganji

Abstract The separation of ibuprofen enantiomers and the interaction between right-handed (R) and left-handed (S) isomers of ibuprofen with the outer surface as well as internal sidewall of a chiral boron nitride nanotube (BNNT(10, 5)) was evaluated. The geometry optimizations and total energy calculations were performed with DFT-D3/revPBE-GGA method for various adsorption configurations. Our first-principles findings showed that interaction strength of the incorporated enantiomers into the BNNTs was higher than ones adsorbed onto the outer surface of nanotube. Also, the interaction energy difference between two enantiomers interacting with inside and outside of the BNNT was about 0.63 and 1.25 kcal/mol, respectively. This finding indicated the more ability of outer surface of BNNT in efficient enantioseparation of Ibuprofen isomers rather than inner site. Furthermore, in order to model a realistic system, molecular dynamics (MD) simulation was performed at room temperature, and the results were consisted with the DFT-D3 findings. The nudged elastic band (NEB) method was also used to evaluate the activation energy barrier for incorporation of ibuprofen into the BNNT cavity. Our molecular simulation findings are reliable to offer beneficial information about the potential application of chiral BNNTs in enantiomer molecules adsorption and separation.

2004 ◽  
Vol 241 (8) ◽  
pp. 1783-1788 ◽  
Author(s):  
Won Ha Moon ◽  
Myung Sik Son ◽  
Jun Ha Lee ◽  
Ho Jung Hwang

2020 ◽  
Vol 20 (12) ◽  
pp. 2050137
Author(s):  
Hamid Zeighampour ◽  
Yaghoub Tadi Beni ◽  
Yaser Kiani

In this paper, the axial buckling of boron nitride nanotubes (BNNTs) is investigated by considering the effects of surface and electric field. To achieve this purpose, the surface elasticity theory is exploited and the results are compared with the molecular dynamic simulation in order to validate the accuracy of the applied theory. In the molecular dynamics simulation, the potential between boron and nitride atoms is considered as Tersoff type. The Timoshenko beam theory is adopted to model BNNT. Moreover, two types of zigzag and armchair BNNTs are considered. In this study, the effects of surface, electric field, length, and thickness of BNNT on the critical buckling load are investigated. According to the results, the critical load of zigzag BNNT depends on the electric field. However, the electric field would not affect the critical load of the armchair BNNT. It should be noted that the surface residual tension and surface Lamé’s constants of BNNT have considerable impact on the critical load of BNNT. For lower values of electric field and smaller dimensions of BNNT, the critical load would be more dependent on the surface effect regarding the results. Furthermore, as an efficient non-classical continuum mechanic approach, the surface elasticity theory can fill the potential gap between the classical continuum mechanic and molecular dynamics simulation.


2004 ◽  
Vol 241 (8) ◽  
pp. 1777-1777
Author(s):  
Won Ha Moon ◽  
Myung Sik Son ◽  
Jun Ha Lee ◽  
Ho Jung Hwang

2019 ◽  
Vol 9 (14) ◽  
pp. 2832 ◽  
Author(s):  
Jiacai Li ◽  
Jiming Chen ◽  
Mingxiao Zhu ◽  
Henggao Song ◽  
Hongyu Zhang

The interface between nanofillers and matrix plays a key role in determining the properties of nanocomposites, but the interfacial characteristics of nanocomposites such as molecular structure and interaction strength are not fully understood yet. In this work, the interfacial features of a typical nanocomposite, namely epoxy resin (EP) filled with boron nitride nanosheet (BNNS) are investigated by utilizing molecular dynamics simulation, and the effect of surface functionalization is analyzed. The radial distribution density (RDD) and interfacial binding energy (IBE) are used to explore the structure and bonding strength of nanocomposites interface. Besides, the interface compatibility and molecular chain mobility (MCM) of BNNS/EP nanocomposites are analyzed by cohesive energy density (CED), free volume fraction (FFV), and radial mean square displacement (RMSD). The results indicate that the interface region of BNNS/EP is composed of three regions including compact region, buffer region, and normal region. The structure at the interfacial region of nanocomposite is more compact, and the chain mobility is significantly lower than that of the EP away from the interface. Moreover, the interfacial interaction strength and compatibility increase with the functional density of BNNS functionalized by CH3–(CH2)4–O– radicals. These results adequately illustrate interfacial characteristics of nanocomposites from atomic level.


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