Analysis of Pd-Ni Nanobelts Melting Process Using Molecular Dynamics Simulation

Joint Authors

Gang, Chen
Peng, Zhang
HongWei, Liu

Source

Journal of Nanomaterials

Issue

Vol. 2013, Issue 2013 (31 Dec. 2013), pp.1-7, 7 p.

Publisher

Hindawi Publishing Corporation

Publication Date

2013-11-14

Country of Publication

Egypt

No. of Pages

7

Main Subjects

Chemistry
Civil Engineering

Abstract EN

The melting process of Pd-Ni alloy nanobelts with different Ni atom content has been simulated by molecular dynamic (MD) method.

The radial distribution function, the Lindemann index, and pair analysis method were used to characterize Pd-Ni nanobelt models in simulation.

The results indicate that the melting temperature of Pd-Ni nanobelt with composition far from pure metal was lower than that of other models, and the breaking point of the nanobelt can be illustrated by the Lindemann index.

Pair analysis indicates that the number of FCC pairs will decrease and almost disappear at melting point with increasing temperature.

The melting points of Pd-Ni alloy nanobelts were also calculated by thermodynamic method, and the results were close to that obtained by MD simulation.

American Psychological Association (APA)

Gang, Chen& Peng, Zhang& HongWei, Liu. 2013. Analysis of Pd-Ni Nanobelts Melting Process Using Molecular Dynamics Simulation. Journal of Nanomaterials،Vol. 2013, no. 2013, pp.1-7.
https://search.emarefa.net/detail/BIM-1007861

Modern Language Association (MLA)

Gang, Chen…[et al.]. Analysis of Pd-Ni Nanobelts Melting Process Using Molecular Dynamics Simulation. Journal of Nanomaterials No. 2013 (2013), pp.1-7.
https://search.emarefa.net/detail/BIM-1007861

American Medical Association (AMA)

Gang, Chen& Peng, Zhang& HongWei, Liu. Analysis of Pd-Ni Nanobelts Melting Process Using Molecular Dynamics Simulation. Journal of Nanomaterials. 2013. Vol. 2013, no. 2013, pp.1-7.
https://search.emarefa.net/detail/BIM-1007861

Data Type

Journal Articles

Language

English

Notes

Includes bibliographical references

Record ID

BIM-1007861