Ph.D. Supervisor and Master's Supervisor
Name: 章立钢
Professional Title: Professor
Administrative Position: 材料学系支部书记
Name (Pinyin): zhangligang
Sex: Male
School/Department: School of Materials science and Engineering
Education Level: PhD Graduate
Degree: Doctoral degree
Alma Mater: 中南大学
Status: Employed
Discipline: Materials Science and Engineering
Enrollment Disciplines: Materials Science and Engineering

Dr. Ligang Zhang is a Professor in the school of Materials Science and Engineering at Central South University. From 2010.08 to 2014.09, he worked in Institute of Energy Process Engineering and Chemical Engineering (IEC) at Technische Universitaet Bergakademie Freiberg (Germany) as a Research Associate and research on characterization and evaluation of solid fuels. Dr. Ligang Zhang’s research work is focus on phase diagram and phase transactions on light metallic alloys, thermoelectric material, piezoelectric ceramics and solar energy materials. So far, his research findings have been published in more than 70 research papers in international SCI journals. He is also the reviewer of international famous SCI journals such as Fuel, CALPHAD, Computational Materials Science, Journal of Alloys and Compounds, Materials & Design, Journal of Electrnic Materials, Journal of Materials Science, Journal of Mining and Metallurgy Section B: Metallurgy, Journal of Phase Equilibria and Diffusion and so on.

›Influence of scandium and yttrium on mechanical properties, corrosion behavior, and martensitic transformation of near-β titanium alloys.JOURNAL OF RARE EARTHS, 2026, 44: 364-376.
›A Polymer Electrolyte for Rechargeable Magnesium Batteries Synergistically Constructed Based on Deep Eutectic Electrolytes and Polymer Network.Small, 2026
›Mechanistic Insights into Zn microalloying on the corrosion behavior of Mg-Sr-Y alloys.Journal of Alloys and Compounds, 2026, 1075: 189293.
›High-temperature activity coefficient prediction: Thermodynamic-Machine learning synergistic modeling of binary Mg-based alloy system at 500?°C.Materials Today Chemistry, 2026, 51: 103307.
›Enhanced wear and corrosion resistance of Ti–26Nb–4Zr–4Sn–1Mo–1Ta alloy by thermal oxidation treatment.Surface and Coatings Technology, 2026, 533: 133653.
›Scandium modified near-β Ti-based implants with ultra-low elastic modulus and superior biocompatibility.JOURNAL OF ALLOYS AND COMPOUNDS, 2025, 1022: 179873.
›Systematic thermodynamic predications of alloying element binding behavior: a case of elemental selection for Mn-reinforced Mg-based alloys and composites.MATERIALS TODAY CHEMISTRY, 2025, 46: 102792.
›Overcoming the strength and ductility trade-off in a metastable β-Ti alloy by coupling heterostructure strengthening and transformation-induced plasticity.Rare Metals, 2025
›The elemental selection rules for corrosion-resistant Mg alloys from first-principles calculations.MATERIALS TODAY CHEMISTRY, 2025, 43: 102519.
›High-throughput exploration of composition-dependent mechanical and diffusion properties of Ti-Al-V-Cr alloys.Journal of Alloys and Compounds, 2025, 1021: 179651.
›Bifunctional Synergistic Mg@SnSb SEI for Low Interfacial Reaction Energy Barriers and Stable Cycling of High-Performance Rechargeable Magnesium Batteries.Advanced Functional Materials, 2025
›Achieving stable ultra-low elastic modulus in near-β titanium alloys through cold rolling and pre-strain.ACTA MATERIALIA, 2025, 286: 120726.
›The elemental selection rules for corrosion-resistant Mg alloys from first-principles calculations.MATERIALS TODAY CHEMISTRY, 2025, 43: 102519.
›Thermodynamic evaluation and optimization of the K2O‐Al2O3‐SiO2 system.Journal of the American Ceramic Society, 2024, 107 (12) : 8732-8745.
›Self-Healable, High-Stability Anode for Rechargeable Magnesium Batteries Realized by Graphene-Confined Gallium Metal.Nano Letter, 2024, 24: 10734-10741.
›Grain size effect on stress-induced martensite in a metastable β-Ti alloy with ultrahigh strength and strain hardening rate.Materials Science and Engineering A, 2024, 918 (3) : 147479.
›Osteogenic activity of a micro/nano hierarchical nano-hydroxyapatite coating on zirconium alloy.Materials Characterization, 2023, 205: 113356.
›Heterostructures Enhance Simultaneously Strength and Ductility of a Commercial Titanium Alloy.Acta Materialia, 2023, 257: 119182.
›Elastin-like recombinamer-mediated hierarchical mineralization coatings on Zr-16Nb-xTi (x = 4,16 wt%) alloy surfaces improve biocompatibility.Biomaterials Advances, 2023, 151: 213471.
›Controllable degradation behavior of Mg-Sr-Y alloys for the bio-applications.npj Materials Degradation, 2023, 7: 45.
›Experimental investigation and and thermodynamic assessment of the Al–Ag–Sc system[J].Journal of Alloys and Compounds, 2022, 934: 167980.
›Effect of cold rolling and solution treatment on βstability and mechanical properties of a metastable β-Ti alloy[J].Materials Science & Engineering A, 2022, 861: 144366.
›Surface modification of zirconium alloy implants by collagen encapsulated strontium ranelate@PCN-224 coating to improve biocompatibility and promote osseointegration[J].Materials Chemistry and Physics, 2022: 126910.
›Osteo-angiogenic and antibacterial activity of a multifunctional micro-porous coating on zirconium alloy[J].Applied Surface Science, 2022, 604: 154465.
›Influence of cooling rate on ω phase precipitation and deformation mechanism of a novel metastable β titanium alloy[J].Materials Science and Engineering: A, 2022, 829: 142151.
›Pseudo-spinodal mechanism approach to designing a near β high-strength titanium alloy through high-throughput technique[J].Rare Metals, 2021, 48: 2099-2108.
›Zr-xNb-4Sn alloys with low Young’s modulus and magnetic susceptibility for biomedical implants[J].Progress in Natural Science: Materials International, 2021, 31: 772-778.
›Diffusion study in BCC Zr-Nb-Ti ternary alloys[J].CALPHAD, 2020, 70: 101803.
›Design of high strength titanium alloy through finding a critical composition with ultra-fine α phase[J].Materials Research Express, 2020, 7: 026541.
›Stabilizing CuGaS(2)by crystalline CdS through an interfacial Z-scheme charge transfer for enhanced photocatalytic CO(2)reduction under visible light.NANOSCALE, 2020, 12: 8693-8700.
›Characterizations of microstructure and texture evolution in Ti664 titanium alloy after multi directional forging and annealing treatments[J].JOM, 2019, 71: 4687-4695.



轻合金热力学及其高性能合金设计(铝合金、镁合金、钛合金)
材料基因工程及材料大数据
低模量低磁化率金属基生物材料设计开发
High Strength Aluminum Alloys and High Entropy Alloys
人工智能赋能材料设计
镁离子电池


弗莱贝格工业大学 › 能源化学所 › 助理研究员

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