Journal of Magnesium and Alloys· 2026Q1
Microstructure-driven formation of a chemically graded corrosion layer in PBF-LB/M fabricated dual-phase Mg–8Li–0.5Ca wt.% ultralight alloy
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- Q1SCImago
- 2026year
Short summary
Powder bed fusion – laser beam/metals (PBF-LB/M) fabrication of a Mg-8Li-0.5Ca alloy yields a refined, homogeneous microstructure that results in more controlled corrosion kinetics and enhanced corrosion resistance compared to cast counterparts.
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Key points
- PBF-LB/M fabrication refines Mg-8Li-0.5Ca alloy grain size to below 2 µm, improving homogeneity.
- PBF-LB/M alloy shows controlled corrosion kinetics due to its refined microstructure, outperforming cast alloys.
- In NaCl, a Li2CO3-enriched layer forms on PBF-LB/M, enhancing corrosion resistance.
- In PBS, PBF-LB/M develops a chemically graded layer with Mg-rich inner and Li-enriched outer products.
- PBF-LB/M extracts meet ISO 10993-5 cytotoxicity standards.
AI-generated from the title and abstract; the full text is not read.
Abstract
In this study, a dual-phase Mg-8Li-0.5Ca wt.% ultralight alloy was successfully fabricated using powder bed fusion - laser beam/metals (PBF-LB/M). The as-built microstructure consisted of α(Mg) enriched with microscale Mg-Ca precipitates and β(Li) containing nanosized needle-like precipitates. Compared with cast counterparts, PBF-LB/M enabled substantial grain refinement to below 2 µm. The corrosion performance of PBF-LB/M and cast alloys as reference materials was systematically evaluated in NaCl and PBS solutions. In both conditions, degradation was governed by microgalvanic interactions between α(Mg) and β(Li), however, PBF-LB/M alloy exhibited more controlled degradation kinetics due to its refined and homogeneous microstructure. In NaCl, the improved corrosion resistance was associated with the formation of Li 2 CO 3 -enriched layer combined with Mg(OH) 2 , limiting chloride-induced film breakdown. In PBS, a distinct behaviour was observed: while the cast alloy formed a mixed Mg/Li phosphate layer, the PBF-LB/M sample developed a Li-rich outer surface composed predominantly of LiOH and Li 2 CO 3 . A chemically graded corrosion layer formed, characterized by Mg-rich inner products and Li-enriched outer compounds. The formation of Li 2 CO 3 , with a favourable Pilling–Bedworth ratio and low solubility, contributed to enhanced surface stability. Additionally, PBF-LB/M extracts meet cytotoxicity requirements according to ISO 10993-5. These findings demonstrate that PBF-LB/M processing significantly modifies corrosion mechanisms in dual-phase Mg–Li alloys and highlight the potential of ultralight Mg–Li–Ca systems for biodegradable biomedical applications.
The authors' abstract, as published at the source. Journal of Magnesium and Alloys, 2026 · DOI ↗
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Field: Biomaterials
BiomaterialsMaterials Science