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Effect of electric fields on tungsten distribution in Na 2 WO 4 -WO 3 molten salt.

Yuliang GuoXiaobo SunHandong JiaoLiwen ZhangWenxuan QinXiao-Li XiZuoren Nie
Published in: Physical chemistry chemical physics : PCCP (2024)
Tungsten coatings have unique properties such as high melting points and hardness and are widely used in the nuclear fusion and aviation fields. In experiments, compared to pure Na 2 WO 4 molten salt, electrolysis with Na 2 WO 4 -WO 3 molten salt results in a lower deposition voltage. Herein, an investigation combining experimental and computational approaches was conducted, involving molecular dynamics simulations with deep learning, high-temperature in situ Raman spectroscopy and activation strain model analysis. The results indicated that the molten salt system's behaviour, influenced by migration and polarization effects, led to increased formation of Na 2 W 2 O 7 in the Na 2 WO 4 -WO 3 molten salt, which has a lower decomposition voltage and subsequently accelerated the cathodic deposition of tungsten. We analyzed the mechanism of the effect of the electric field on the Na 2 W 2 O 7 structure based on the bond strength and electron density. This research provides crucial theoretical support for the effect of electric field on tungsten in molten salt and demonstrates the feasibility of using machine learning-based DPMD methods in simulating tungsten-containing molten salt systems.
Keyphrases
  • molecular dynamics simulations
  • deep learning
  • raman spectroscopy
  • visible light
  • high temperature
  • high resolution
  • machine learning