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Tungsten disilicide (WSi 2) is an inorganic compound, a silicide of tungsten. It is an electrically conductive ceramic material.
Sep 1, 2019 · Tungsten disilicide (WSi 2) is an attractive advanced functional material, which is regarded as the potential thermoelectric devices, energy storage system and aerospace etc. However, the correlation between structure and the related performances of WSi 2 is not well understood.
- Y. Pan, C. Jing, Y.P. Wu
- 2019
Tungsten disilicide (WSi2) was synthesized by simple thermal treatment at 1350 °C for 4 h in an argon atmosphere. These optimal synthesis conditions were obtained by variation of temperatures and times of heating, and the.
May 1, 2020 · Abstract. The hot dip silicon-plating method (HDS) is used to deposit a two-layer silicide coating on tungsten substrate. The growth behavior, microstructure, and phase composition of silicide coating are investigated. The silicide coating is composed by out layer (WSi 2 layer) and interfacial layer (W 5 Si 3 layer), which have a very dense ...
- Yingyi Zhang, Yingyi Zhang, Kunkun Cui, Tao Fu, Jie Wang, Junmao Qie, Xu zhang
- 2020
Nov 14, 2017 · Tungsten disilicide (WSi 2) was synthesized by simple thermal treatment at 1350 °C for 4 h in an argon atmosphere. We found that optimizing the synthesis conditions led to a mix of pure WSi 2 (85 %) and W 5 Si 3 (15 %) phases, with negligible amounts of impurity phases present.
- Jelena Luković, Dejan Zagorac, J. Christian Schön, Jelena Zagorac, Dragana Jordanov, Tatjana Volkov-...
- 2017
Jun 1, 2019 · Tungsten disilicide (WSi2) is an attractive advanced functional material, which is regarded as the potential thermoelectric devices, energy storage system and aerospace etc. However, the...
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What is WSI 2 used for?
What is WSI 2 with C11 B structure?
Does WSi2 have a structure?
Is WSi2 a type of tungsten disilicide?
Can WSi2 be modified?
How WSI 2 & W 5 Si 3 are formed?
Sep 2, 2020 · Abstract. Si-based anodes are attracting enormous attention due to the super-high theoretical capacity of silicon (3579 mA h g −1 at room temperature) as an anode of lithium-ion batteries.