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Structural effects of boron doping in diamond crystals for gamma-ray light-source applications: Insights from molecular dynamics simulations

Dickers, Matthew D., Fantuzzi, Felipe, Mason, Nigel, Sushko, Gennady B., Korol, Andrei V., Solov’yov, Andrey V. (2026) Structural effects of boron doping in diamond crystals for gamma-ray light-source applications: Insights from molecular dynamics simulations. Diamond and Related Materials, 166 . Article Number 113714. ISSN 0925-9635. (doi:10.1016/j.diamond.2026.113714) (KAR id:115315)

Abstract

Boron-doped diamond crystals (BDD, C1-xBx) exhibit exceptional mechanical strength, electronic tunability, and resistance to radiation damage. This makes them promising materials for use in gamma-ray crystal-based light sources. To better understand and quantify the structural distortions introduced by doping, which are critical for maintaining channelling efficiency, we perform atomistic-level molecular dynamics simulations on periodic C1-xBx systems of various sizes. These simulations allow the influence of boron concentration on the lattice constant and the (1 1 0) and (1 0 0) inter-planar distances to be evaluated over the concentration range from pure diamond (0%) to 5% boron at room temperature (300 K). Linear relationships between both lattice constant and inter-planar distance with increasing dopant concentration are observed, with a deviation from Vegard’s Law. This deviation is larger than that reported by other theoretical and computational studies; however, this may be attributed to an enhanced crystal quality over these studies, a vital aspect when considering gamma-ray crystal light source design. The methodology presented here incorporates several refinements to closely reflect the conditions of microwave plasma chemical vapour deposition (MPCVD) crystal growth. These results enable reliable atomistic modelling of doped diamond crystals and support their use in the design and fabrication of periodically bent structures for next-generation gamma-ray light source technologies.

Item Type: Article
DOI/Identification number: 10.1016/j.diamond.2026.113714
Subjects: Q Science > QD Chemistry
Institutional Unit: Schools > School of Engineering, Mathematics and Physics > Physics and Astronomy
Schools > School of Natural Sciences > Chemistry and Forensic Science
Former Institutional Unit:
There are no former institutional units.
Funders: European Union (https://ror.org/019w4f821)
European Cooperation in Science and Technology (https://ror.org/01bstzn19)
Deutsche Forschungsgemeinschaft (https://ror.org/018mejw64)
University of Kent (https://ror.org/00xkeyj56)
Depositing User: Felipe Fantuzzi
Date Deposited: 17 May 2026 13:09 UTC
Last Modified: 01 Jul 2026 02:46 UTC
Resource URI: https://kar.kent.ac.uk/id/eprint/115315 (The current URI for this page, for reference purposes)

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