Javascript must be enabled to continue!
Characterization of dislocation loops in hydrogen-ion irradiated vanadium
View through CrossRef
Vanadium alloys are considered as the candidate materials for structure application in fusion reactors because of their low radiation-induced activation, high resistance to radiation damage, high thermal conduction, and low thermal expansion coefficient. Before these materials, which will be exposed to high-flux hydrogen and helium isotopes, may be safely used in fusion device much more data based on irradiation damage are required. The study of dislocation loops in vanadium is designed to indicate the mechanism of void growing under irradiation. The mechanism is that different types of dislocation loops have different bias which represent their abilities to absorb point defects. It is possible to explain the irradiation swelling performance in the material with the bias of loops. The thin disks samples used in this experiment are made of pure vanadium and vanadium alloy (V-4Cr-4Ti) by twin-jet electro-polishing. Electrolyte of H2SO4-CH3OH (1 : 6 by volume) at -20 ℃ is used in a current of 80~120 mA. To get a clear view of dislocation loops, the SRIM code is used to simulate the implantation of hydrogen ions into vanadium. The ion irradiation is carried out to a dose of 51016H+/cm2, at an energy of 30 keV. Microstructure observations are performed on a Tecnai G2 F20 (transmission electron microscope, TEM) at an accelerating voltage of 200 kV. The Burger's vectors and nature of the dislocation loops formed in pure vanadium by hydrogen implantation are confirmed by TEM. This experiment has focused on as many as 76 dislocation loops, lots of images are taken under different diffraction conditions from the same areas of interest. Results show that most of the dislocation loops have a Burger's vectors of 1/2111 (90%), and a few of 110. No loops with b= 100 loops can be found in this study. The nature of dislocation loops is determined by the inside-outside method. The number of the dislocation loops that can make sure of their nature is 29, and all of them are conformed to be interstitial type, their habit planes are from {110} to {112}. No vacancy type loops are found. The density and average size of dislocation loops in vanadium and vanadium alloy are also analysed. Compared with the pure vanadium, the loops in vanadium alloy of V-4Cr-Ti are formed in a smaller size and higher number density. As a future work the difference of the loops nature between pure vanadium and vanadium-based alloys should be investigated to illustrate their behaviour of irradiation swelling.
Acta Physica Sinica, Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences
Title: Characterization of dislocation loops in hydrogen-ion irradiated vanadium
Description:
Vanadium alloys are considered as the candidate materials for structure application in fusion reactors because of their low radiation-induced activation, high resistance to radiation damage, high thermal conduction, and low thermal expansion coefficient.
Before these materials, which will be exposed to high-flux hydrogen and helium isotopes, may be safely used in fusion device much more data based on irradiation damage are required.
The study of dislocation loops in vanadium is designed to indicate the mechanism of void growing under irradiation.
The mechanism is that different types of dislocation loops have different bias which represent their abilities to absorb point defects.
It is possible to explain the irradiation swelling performance in the material with the bias of loops.
The thin disks samples used in this experiment are made of pure vanadium and vanadium alloy (V-4Cr-4Ti) by twin-jet electro-polishing.
Electrolyte of H2SO4-CH3OH (1 : 6 by volume) at -20 ℃ is used in a current of 80~120 mA.
To get a clear view of dislocation loops, the SRIM code is used to simulate the implantation of hydrogen ions into vanadium.
The ion irradiation is carried out to a dose of 51016H+/cm2, at an energy of 30 keV.
Microstructure observations are performed on a Tecnai G2 F20 (transmission electron microscope, TEM) at an accelerating voltage of 200 kV.
The Burger's vectors and nature of the dislocation loops formed in pure vanadium by hydrogen implantation are confirmed by TEM.
This experiment has focused on as many as 76 dislocation loops, lots of images are taken under different diffraction conditions from the same areas of interest.
Results show that most of the dislocation loops have a Burger's vectors of 1/2111 (90%), and a few of 110.
No loops with b= 100 loops can be found in this study.
The nature of dislocation loops is determined by the inside-outside method.
The number of the dislocation loops that can make sure of their nature is 29, and all of them are conformed to be interstitial type, their habit planes are from {110} to {112}.
No vacancy type loops are found.
The density and average size of dislocation loops in vanadium and vanadium alloy are also analysed.
Compared with the pure vanadium, the loops in vanadium alloy of V-4Cr-Ti are formed in a smaller size and higher number density.
As a future work the difference of the loops nature between pure vanadium and vanadium-based alloys should be investigated to illustrate their behaviour of irradiation swelling.
Related Results
Memory Deficit Recovery after Chronic Vanadium Exposure in Mice
Memory Deficit Recovery after Chronic Vanadium Exposure in Mice
Vanadium is a transitional metal with an ability to generate reactive oxygen species in the biological system. This work was designed to assess memory deficits in mice chronically ...
Pengambilan Kembali Vanadium Pentaoksida dari Katalis Bekas
Pengambilan Kembali Vanadium Pentaoksida dari Katalis Bekas
Katalis vanadium bekas diperkirakan akan menjadi salah satu sumber utama persediaan vanadium di masa mendatang. Hasil analisis vanadium dalam katalis vanadium bekas menunjukkan bah...
Ion Intercalation into Vanadium Sulfides for Battery Applications
Ion Intercalation into Vanadium Sulfides for Battery Applications
Global battery manufacturing capacity will more than double by 2021 to about 280,000 megawatt-hours.1 Rechargeable batteries make up a significant fraction of battery manufacturing...
Thermodynamic Modeling of the Vanadium Alloy Smelting Process Using a Silicon-aluminum Reducing Agent
Thermodynamic Modeling of the Vanadium Alloy Smelting Process Using a Silicon-aluminum Reducing Agent
The article is devoted to the study of the theoretical aspect of obtaining a vanadium alloy by aluminosilicothermic method. Vanadium pentoxide and converter vanadium slag were stud...
Vanadium improves memory and spatial learning and protects the pyramidal cells of the hippocampus in juvenile hydrocephalic mice
Vanadium improves memory and spatial learning and protects the pyramidal cells of the hippocampus in juvenile hydrocephalic mice
BackgroundHydrocephalus is a neurological condition known to cause learning and memory disabilities due to its damaging effect on the hippocampal neurons, especially pyramidal neur...
Structure and Properties of PA66/Irradiated LLDPE Blends
Structure and Properties of PA66/Irradiated LLDPE Blends
The oxygen-containing groups such as C—O, C=O, and C(=O)O were introduced onto linear low density polyethylene (LLDPE) chains by ultraviolet irradiation in air. The irradiated LLDP...
Elucidating hydrogen-solid interactions using computational modeling
Elucidating hydrogen-solid interactions using computational modeling
Hydrogen has significant chemical utility, both as a synthetic reagent and as an energy carrier. As the world moves away from fossil fuels being the predominant energy carrier, the...
Vanadium mineralization in the Kola region, Fennoscandian Shield
Vanadium mineralization in the Kola region, Fennoscandian Shield
In the northern Fennoscandian Shield, a vanadium mineralization occurs in the Paleoproterozoic Pechenga–Imandra-Varzuga (PIV) riftogenic structure. It is localized in sul...

