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April 27, 2026Nature Communications0 citationsOpen Access

Strong 3D-printed aluminium reinforced with ductile-transformable eutectic nano-skeleton

YLYang LiTCT ChenSZShengyi Zhong

Key Points

  • This research aims to develop lightweight aluminium alloys with improved strength and ductility using ductile-transformable eutectic nano-skeletons.
  • Developed Al-Er alloy family with Al3(Er,Mg) primary strengthening architecture.
  • Utilized laser powder bed fusion for additive manufacturing process.
  • Investigated deformation mechanisms including twinning and stacking order formation.
  • Achieved alloy strengths of 600-700 MPa with 7% elongation.
  • Demonstrated effective cooperative deformation of Al3(Er,Mg) skeleton with α-Al matrix.
  • Established a new approach for overcoming the strength-ductility trade-off in aluminium alloys.

Abstract

Lightweight metals for additive manufacturing remain constrained by limited strength-ductility synergy, restricting their use in high-performance structural applications. Here we report a design strategy for additively manufactured alloys based on ductile-transformable eutectic nano-skeletons (DT-ENS) enabled by non-equilibrium solidification. In a near-eutectic Al-Er system, we develop an alloy family containing a deformable Al3(Er,Mg) nano-skeleton as the primary strengthening architecture. Site-specific atomic substitution and long-range chemical ordering within the Al3(Er,Mg) skeleton are associated with deformation twinning and the strain-induced formation of 9R-type long-period stacking ordered structures, which enhance work-hardening of the skeleton and promote cooperative deformation with the α-Al matrix. Laser powder bed fusion yields Al-Er alloys with strengths of 600-700 MPa, together with good printability and useful ductility. These findings establish a new benchmark for structural additively manufactured aluminium alloys, provide a route for developing ductile intermetallics to overcome the strength-ductility trade-off in high-strength aluminium alloys, and demonstrate the role of additive manufacturing in uncovering new alloy systems and deformation mechanisms. This work develops a 3D-printed aluminium alloy with an Al3Er nanoscale skeleton that deforms rather than breaks, achieving 700 MPa strength and 7% elongation, the mechanisms of which enable stronger lightweight structural metals.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69eefdb5fede9185760d4734https://doi.org/10.1038/s41467-026-72256-4
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