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Article

Superior Strength-Ductility Synergy Enabled by Dual-Level Heterostructure of L12 Precipitates and Local Chemical Order in a MPEA

1
Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China
2
State Key Laboratory of Digital Steel, Northeastern University, Shenyang 110819, China
3
Key Laboratory of Neutron Physics and Institute of Nuclear Physics and Chemistry, China Academy of Engineering Physics, Mianyang 621999, China
*
Author to whom correspondence should be addressed.
Nanomaterials 2026, 16(7), 418; https://doi.org/10.3390/nano16070418
Submission received: 9 March 2026 / Revised: 27 March 2026 / Accepted: 30 March 2026 / Published: 30 March 2026
(This article belongs to the Special Issue Innovative Nanomaterials for Enhanced Steel and Alloy Performance)

Abstract

The trade-off between strength and ductility remains a pivotal challenge in the development of multi-principal element alloys (MPEAs) for structural applications. Here, we report a dual-scale ordering strategy to achieve triple strengthening in a Ni-26.6Co-18.4Cr-5.4Nb-4.1Mo-2.3Al-0.3Ti-0.05Y (wt.%) MPEA through the synergistic interplay of L12 nanoprecipitates and local chemical order (LCO). The alloy was processed via cold rolling followed by aging at 750 °C for 8 h, resulting in a high density of coherent L12 precipitates (average size 47 ± 1 nm, volume fraction ~27%) with an ultra-low lattice misfit of 0.5%. Additionally, sub-nanoscale LCO domains with an average diameter of 0.62 nm were identified within the face-centered cubic matrix. This hierarchical microstructure yields an exceptional combination of mechanical properties at room temperature: yield strength of 1480 ± 6 MPa, ultimate tensile strength of 1678 ± 10 MPa, and a total elongation of 13.9 ± 0.2%. Quantitative strengthening analysis reveals that precipitation strengthening (697 MPa) is the dominant contributor, followed by dislocation strengthening (397 MPa). Transmission electron microscopy characterization of deformed samples reveals that the low stacking fault energy, promoted by LCO, facilitates the dissociation of perfect dislocations and the formation of extensive stacking faults. The intersection of stacking faults on different {111} planes generates a large number of Lomer–Cottrell locks, which significantly enhance work hardening and delay plastic instability. The findings demonstrate that engineering dual-scale ordered structures offers a promising pathway for developing MPEAs with a superior strength-ductility combination.
Keywords: multi-principal element alloy; L12 Precipitates; local chemical order; strengthening; mechanical property multi-principal element alloy; L12 Precipitates; local chemical order; strengthening; mechanical property

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MDPI and ACS Style

Zhang, J.; Shen, Y.; Xue, W.; Fan, Z. Superior Strength-Ductility Synergy Enabled by Dual-Level Heterostructure of L12 Precipitates and Local Chemical Order in a MPEA. Nanomaterials 2026, 16, 418. https://doi.org/10.3390/nano16070418

AMA Style

Zhang J, Shen Y, Xue W, Fan Z. Superior Strength-Ductility Synergy Enabled by Dual-Level Heterostructure of L12 Precipitates and Local Chemical Order in a MPEA. Nanomaterials. 2026; 16(7):418. https://doi.org/10.3390/nano16070418

Chicago/Turabian Style

Zhang, Jingjing, Yongfeng Shen, Wenying Xue, and Zhijian Fan. 2026. "Superior Strength-Ductility Synergy Enabled by Dual-Level Heterostructure of L12 Precipitates and Local Chemical Order in a MPEA" Nanomaterials 16, no. 7: 418. https://doi.org/10.3390/nano16070418

APA Style

Zhang, J., Shen, Y., Xue, W., & Fan, Z. (2026). Superior Strength-Ductility Synergy Enabled by Dual-Level Heterostructure of L12 Precipitates and Local Chemical Order in a MPEA. Nanomaterials, 16(7), 418. https://doi.org/10.3390/nano16070418

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