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◆ Diamond and Related Materials2026-03-31· Materials science

Process driven self-organisation in laser powder bed fusion of copper coated diamond

John Robinson, Arun Arjunan, Niki Zakeri, C.T. Walker, Ahmad Baroutaji, Abul Arafat, Aaron Vance, Manpreet Singh, Chameekara T. Wanniarachchi, Martin Appiah, Oluwarotimi Lawal

原始摘要(英文原文)· Original abstract
Laser powder bed fusion (LPBF) of metal-diamond composites remains fundamentally limited by the extreme thermal gradients imposed by diamond. Here we demonstrate, for the first time, the LPBF of copper-coated diamond revealing previously inaccessible melt-pool behaviour. A narrow conduction-mode process window (150–220 J/mm 3 ) where single tracks exhibit <2.5% porosity and predictable geometric scaling was identified. Systematic single-track mapping reveals a unified thermo-fluidic response described by a vector regression model linking track geometry, porosity, particle assimilation and bonding to energy density. Multi-track experiments uncover six distinct morphological regimes, including a remarkable and previously unreported self-organised sub-micron porous lattice that emerges exclusively within a narrow 113–141 J/mm 3 window. This polygonal network (0.5–2 μm pores; 0.2–0.8 μm ligaments) forms through capillary-driven breakup of transient molten Cu films confined between overlapping tracks. By coupling classical van-der-Waals thin-film instability theory to LPBF specific melt-pool constraints, we derive the Robinson-Arjunan scaling law that predicts the lattice wavelength consistent with experimental observations. At higher energies, lattice coarsening, densification and keyhole-dominated porosity emerge. The results establish LPBF as not merely a consolidation route but a self-organisation platform for metal-diamond systems enabling engineered sub-micron architectures and tunable interfacial morphologies unattainable in monolithic metals. This work opens a new domain in additive manufacturing where feedstock design and melt-pool physics jointly govern hierarchical microstructure formation. • LPBF of copper-coated diamond demonstrated • Narrow conduction window yields micro/nano level porosity. • Self-organised sub-micron porous lattice • Thin-film instability drives polygonal lattice formation. • Robinson–Arjunan scaling law predicts lattice.
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Process driven self-organisation in laser powder bed fusion of copper coated diamond — 科研速览 Science Skim