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[1]A two-decade odyssey in fusion-based additive manufacturing of titanium alloys and composites.APPLIED MATERIALS TODAY, 2024
[2]Unraveling the inherent anisotropic properties of in situ alloyed copper-modified titanium alloys produced by laser powder bed fusion.JOURNAL OF ALLOYS AND COMPOUNDS, 2023
[3]Enhanced corrosion resistance, antibacterial properties and osteogenesis by Cu ion optimized MgAl-layered double hydroxide on Mg alloy.Journal of Magnesium and Alloys, 2023
[4]Tensile strength and wear resistance of glass-reinforced PA1212 fabricated by selective laser sintering.VIRTUAL AND PHYSICAL PROTOTYPING, 2023
[5]Achieving ultrahigh strength and ductility in high-entropy alloys via dual precipitation.JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2023
[6]A crack-free Ti-modified Al-Cu alloy processed by in-situ alloying laser powder bed fusion: Tribological behaviors and mechanical properties.JOURNAL OF ALLOYS AND COMPOUNDS, 2023
[7]Microstructure and mechanical properties of biodegradable Zn-2Cu-0.1Ti alloy for orthopedic applications.Journal of Materials Science & Technology, 2023
[8]The effect of RRA treatment on mechanical properties and wear behavior in vanadium micro-alloyed Hadfield's steel.JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY, 2023
[9]Sequentially activating macrophages M1 and M2 phenotypes by lipopolysaccharide-containing Mg-Fe layered double hydroxides coating on the Ti substrate.COLLOIDS AND SURFACES B-BIOINTERFACES, 2023
[10]Copper segregation-mediated formation of nanotwins and 9R phase in titanium alloys produced by laser powder bed fusion.SCRIPTA MATERIALIA, 2023
[11]A comparative study on microstructure, nanomechanical and corrosion behaviors of AlCoCuFeNi high entropy alloys fabricated by selective laser melting and laser metal deposition.JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2022
[12]Synergetic Enhancement of Mechanical Properties for Silk Fibers by a Green Feeding Approach with Nano-hydroxyapatite/collagen Composite Additive.JOURNAL OF NATURAL FIBERS, 2022
[13]Simultaneously stimulated osteogenesis and anti-bacteria of physically cross-linked double-network hydrogel loaded with MgO-Ag2O nanocomposites.BIOMATERIALS ADVANCES, 2023
[14]Preparing Sr-containing nano-structures on micro-structured titanium alloy surface fabricated by additively manufacturing to enhance the anti-inflammation and osteogenesis.Colloids and Surfaces B: Biointerfaces, 2022
[15]A comparative study on microstructure, nanomechanical and corrosion behaviors of AlCoCuFeNi high entropy alloys fabricated by selective laser melting and laser metal deposition.Journal of Materials Science & Technology, 2022
[16]Sequential activation of M1 and M2 phenotypes in macrophages by Mg degradation from Ti-Mg alloy for enhanced osteogenesis.Biomaterials research, 2022
[17]Microstructure and tribological behaviors of FeCoCrNiMoSix high-entropy alloy coatings prepared by laser cladding.Surface & Coatings Technology, 2021
[18]Mechanical properties and corrosion resistance of powder metallurgical Mg-Zn-Ca/Fe bulk metal glass composites for biomedical application.Journal of Materials Science &Technology, 2022
[19]Engineering nano-structures with controllable dimensional features on micro-topographical titanium surfaces to modulate the activation degree of M1 macrophages and their osteogenic potential.Journal of Materials Science & Technology, 2021
[20]Facile synthesis of multi-functional nano-composites by precise loading of Cu2+ onto MgO nano-particles for enhanced osteoblast differentiation, inhibited osteoclast formation and effective bacterial killing.Materials Science and Engineering: C, 2021
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