A molecular dynamics simulation of energetics and diffusion of point defects in a AuâAg alloy
[摘要] For revealing an aging mechanism for self-irradiation in a PuâGa alloy, we carried out a molecular dynamics (MD) simulation on a substitutional material, i.e., AuâAg alloy. In this work,we estimate physical and microscopic propertiesof the AuâAg alloy containing various point defects using a MD method, in particular, formation energy for point defects, migration energy for point defects diffusion into interstitial sites, and diffusion coefficient for the AuâAg alloy containing point defects, such as vacancy, He atom and He-vacancy (He-V) cluster. The results indicate that volumetric heat capacity and linear expansion coefficient would decrease due to the various point defects, and He atom has the most remarkable influence on the physical properties of the AuâAg alloy for point defects considered in this work. The formation energy of Au and Ag self-interstitial atom indicates that Octa1 is the most stable site, and structural stability of octahedral (Octa) interstitial sites for the He atom obeys Octa1 > Octa2 >Octa4 > Octa3. For the He$_n$ V$_m$ cluster, the formation energy ofthe defect structure is most stable at $n = m$. The diffusion coefficient of the He-V cluster is relatively smaller, showing that vacancy defects would further decrease atomic diffusion. An influence of various point defects on the diffusion velocity in the AuâAg alloy obeys the He-V cluster > He > vacancy > Ag > Au.
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[效力级别] [学科分类] 材料工程
[关键词] Radiation damage;point defects;formation energy;migration energy;molecular dynamics. [时效性]