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◆ Journal of Materials Research and Technology2026-05-01· Materials science

Comprehensive formulation strategy for 316L stainless steel paste: Optimizing printability, curing, and stability in digital light processing

Zequn Wu, Weiwei Liu, Hongzhi Zhou, Xing Zhang, Yao Chen, Qinghao Zhang, Wenjie Xu, Wenli Li, Zhanwen Xing

原始摘要(英文原文)· Original abstract
Metal digital light processing (MDLP) has emerged as a promising route for high-precision metal additive manufacturing (AM), owing to its capability to produce parts with excellent surface quality and fine geometric features. However, its practical application remains limited by the persistent trade-off among curing depth, solid loading, and feedstock stability, particularly for high-density, optically absorptive metal systems. Herein, we report a formulation-driven strategy to address these coupled challenges by simultaneously tailoring the printability, photocuring performance, and stability of a 316L stainless steel (316L SS) photosensitive paste, without relying on particle surface modification, auxiliary heating, or real-time mixing. A high solid loading of 50 vol% was achieved while maintaining a sufficient curing depth of approximately 56 μm through photoinitiator–wavelength matching and resin functionality optimization. Meanwhile, long-term feedstock stability for more than 24 h was realized by incorporating a shear-reversible thixotropic network, which enabled uniform recoating under blade-induced shear and effectively suppressed sedimentation during rest periods. As a result, complex 316L SS parts with high dimensional accuracy and excellent surface quality were successfully fabricated. After debinding and sintering, the parts exhibited a tensile strength of 511.2 ± 22.0 MPa and a fracture elongation of 69.1 ± 9.3%, demonstrating a favorable strength–ductility combination compared with reported values for indirectly additively manufactured 316L SS parts. This work establishes a practical and scalable paste-based formulation strategy for MDLP and provides guidance for extending vat photopolymerization to high-density, optically absorptive metal systems.
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