Helium-Ion-Implantation in Tungsten: Progress towards a Coherent Understanding of the Damage Formed and its Effects on Properties

Tungsten is a likely material for divertor armour in fusion reactors. We describe recent progress combining multi-technique experiments with atomistic modelling to understand how injected helium interacts with displacement damage and modifies the physical properties of tungsten. Using X-ray micro-di...

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Bibliographic Details
Main Authors: Hofmann, F., Nguyen-Manh, D., Mason, D.R., Gilbert, M.R., Dudarev, S.L., Eliason, J.K., Beck, C.E., Liu, W., Duncan, Ryan Andrew, Maznev, Alexei, Nelson, Keith Adam
Other Authors: Massachusetts Institute of Technology. Department of Chemistry
Format: Article
Published: Elsevier 2018
Online Access:http://hdl.handle.net/1721.1/113411
https://orcid.org/0000-0002-8574-6033
https://orcid.org/0000-0001-7804-5418
Description
Summary:Tungsten is a likely material for divertor armour in fusion reactors. We describe recent progress combining multi-technique experiments with atomistic modelling to understand how injected helium interacts with displacement damage and modifies the physical properties of tungsten. Using X-ray micro-diffraction and laser-induced transient grating measurements, we observe both a lattice swelling and modulus change after helium implantation. Surprisingly, a fraction of a percent lattice expansion is associated with an order of magnitude larger reduction in elastic modulus. These observations are interpreted using a combined elasticity and density functional theory model. We also measure a large reduction of thermal diffusivity due to helium implantation. This can be explained in terms of the underlying damage microstructure using a new atomistic kinetic theory model. Together our observations and calculations allow us to begin to form a joined-up picture of helium-implantation-induced damage in tungsten and its diverse effects on microstructure and physical properties. Keywords: tungsten; ion implantation; helium laue micro-diffraction; surface acoustic waves; thermal transport