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Anže Založnik

Researcher at Jožef Stefan Institute

Publications -  19
Citations -  452

Anže Založnik is an academic researcher from Jožef Stefan Institute. The author has contributed to research in topics: Deuterium & Nuclear reaction analysis. The author has an hindex of 12, co-authored 18 publications receiving 362 citations.

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Plasma-wall interaction studies within the EUROfusion consortium: progress on plasma-facing components development and qualification

S. Brezinsek, +184 more
- 18 Aug 2017 - 
TL;DR: The provision of a particle and power exhaust solution which is compatible with first-wall components and edge-plasma conditions is a key area of present-day fusion research and mandatory for a suc...
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Simulations of atomic deuterium exposure in self-damaged tungsten

TL;DR: In this article, simulations of deuterium (D) atom exposure in self-damaged polycrystalline tungsten at 500 and 600 K were performed using an evolution of the MHIMS (migration of hydrogen isotopes in materials) code in which a model to describe the interaction of D with the surface is implemented.
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Hydrogen isotope accumulation in the helium implantation zone in tungsten

TL;DR: In this paper, the influence of helium (He) on deuterium transport and retention was studied experimentally in tungsten (W), and it was shown unambiguously that He attracts D and locally increases D trapping.
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In situ NRA study of hydrogen isotope exchange in self-ion damaged tungsten exposed to neutral atoms

TL;DR: In this paper, isotope exchange was studied in situ by nuclear reaction analysis in the bulk of self-ion damaged tungsten at 600 K and in the surface by Elastic Recoil Detection Analysis at 480 K and 380 K.
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Retention and release of hydrogen isotopes in tungsten plasma-facing components: the role of grain boundaries and the native oxide layer from a joint experiment-simulation integrated approach

TL;DR: In this paper, the authors developed an approach that couples dedicated experimental studies with modelling at all relevant scales, from microscopic elementary steps to macroscopic observables, in order to build a reliable and predictive fusion reactor wall model.