波音游戏-波音娱乐城赌球打不开

Prof. Tao YANG

PhD City University of Hong Kong
MSc Xiamen University, China


Associate Professor


Office: BOC-R7125
Phone: +(852)-3442-4631
Fax: +(852)-3442-0892
Email: [email protected]
Web: -

PhD City University of Hong Kong
MSc Xiamen University, China


Associate Professor


Office: BOC-R7125
Phone: +(852)-3442-4631
Fax: +(852)-3442-0892
Email: [email protected]
Web: -

Prof. Yang is currently an Associate Professor at the Department of Materials Science and Engineering in City University of Hong Kong. His research focuses on the innovative design and fabrication of advanced metallic materials for structural and functional applications, including the high-entropy alloys, intermetallic materials, high-temperature superalloys, deep cryogenic alloys and electrocatalysis materials. His current work is primarily focused on the control of nanoprecipitation, grain-boundary characters, and atomic structures by using multiple state-of-the-art techniques, such as the 3D atom probe tomography (3D-APT), high-resolution transmission electron microscope (HETEM), and 3D printing.

Research Expertise

? Physical metallurgy of advanced metallic metals, especially the multicomponent high-entropy alloys, superlattice intermetallic alloys, and hetero-structured alloys
? Nanoprecipitation and grain-boundary segregation engineering
? High-temperature structural materials
? Electrocatalysis intermetallic alloys

Recent Publications

  1. Yang, T., Zhao, Y. L., Li, W. P., Yu, C. Y., Luan, J. H., Lin, D. Y., Fan, L., Jiao, Z. B., Liu, W. H., Liu, X. J., Kai, J. J., Huang, J. C., & Liu, C. T. (2020). Ultrahigh-strength and ductile superlattice alloys with nanoscale disordered interfaces. Science (New York, N.Y.), 369(6502), 427-432.
  2. Yang, T., Zhao, Y. L., Tong, Y., Jiao, Z. B., Wei, J., Cai, J. X., Han, X. D., Chen, D., Hu, A., Kai, J. J., Lu, K., Liu, Y., & Liu, C. T. (2018). Multicomponent intermetallic nanoparticles and superb mechanical behaviors of complex alloys. Science (New York, N.Y.), 362(6417), 933-937.
  3. Jia, Z., Yang, T., Sun, L., Zhao, Y., Li, W., Luan, J., Lyu, F., Zhang, L-C., Kruzic, J. J., Kai, J-J., Huang, J. C., Lu, J., & Liu, C. T. (2020). A Novel Multinary Intermetallic as an Active Electrocatalyst for Hydrogen Evolution. Advanced Materials, 32(21), [2000385].
  4. Yang, T., Zhao, Y. L., Fan, L., Wei, J., Luan, J. H., Liu, W. H., Wang, C., Jiao, Z. B., Kai, J. J., & Liu, C. T. (2020). Control of nanoscale precipitation and elimination of intermediate-temperature embrittlement in multicomponent high-entropy alloys. Acta Materialia, 189, 47-59.
  5. Yang, T., Zhao, Y. L., Liu, W. H., Zhu, J. H., Kai, J. J., & Liu, C. T. (2018). Ductilizing brittle high-entropy alloys via tailoring valence electron concentrations of precipitates by controlled elemental partitioning. Materials Research Letters, 6(10), 600-606.
  6. Yang, T., Zhao, Y. L., Luan, J. H., Han, B., Wei, J., Kai, J. J., & Liu, C. T. (2019). Nanoparticles-strengthened high-entropy alloys for cryogenic applications showing an exceptional strength-ductility synergy. Scripta Materialia, 164, 30-35.
  7. Yang, T., Zhao, Y. L., Cao, B. X., Kai, J. J., & Liu, C. T. (2020). Towards superior mechanical properties of hetero-structured high-entropy alloys via engineering multicomponent intermetallic nanoparticles. Scripta Materialia, 183, 39-44.
  8. Yang, T., Zhao, Y., Liu, W., Kai, J., & Liu, C. (2018). L12-strengthened high-entropy alloys for advanced structural applications. Journal of Materials Research, 33(19), 2983-2997.
  9. Zhao, Y. L., Yang, T., Li, Y. R., Fan, L., Han, B., Jiao, Z. B., Chen, D., Liu, C. T., & Kai, J. J. (2020). Superior high-temperature properties and deformation-induced planar faults in a novel L12-strengthened high-entropy alloy. Acta Materialia, 188, 517-527.
  10. Kong, H. J., Yang, T., Chen, R., Yue, S. Q., Zhang, T. L., Cao, B. X., Wang, C., Liu, W. H., Luan, J. H., Jiao, Z. B., Zhou, B. W., Meng, L. G., Wang, A., & Liu, C. T. (2020). Breaking the strength-ductility paradox in advanced nanostructured Fe-based alloys through combined Cu and Mn additions. Scripta Materialia, 186, 213-218.
  11. Du, X. H., Li, W. P., Chang, H. T., Yang, T., Duan, G. S., Wu, B. L., Huang, J. C., Chen, F. R., Liu, C. T., Chuang, W. S., Lu, Y., Sui, M. L., & Huang, E. W. (2020). Dual heterogeneous structures lead to ultrahigh strength and uniform ductility in a Co-Cr-Ni medium-entropy alloy. Nature Communications, 11, [2390].
百家乐官网平游戏| 博雅德州扑克网页版| 百家乐五式缆投法| 百家乐开闲的几率多大| 怀集县| 百家乐娱乐官方网| 实战百家乐十大取胜原因百分百战胜百家乐不买币不吹牛只你能做到按我说的.百家乐基本规则 | 商都县| 迪威百家乐现场| bet365资讯网| 开心8百家乐现金网| 真人百家乐官网导航| 澳门百家乐视频| 百家乐官网出千原理| 电白县| LV百家乐赢钱LV| 百家乐2号机器投注技巧| 最可信百家乐官网娱乐城| 水果机价格| 百家乐官网真人游戏网上投注 | 凯旋国际娱乐| 路单百家乐官网的玩法技巧和规则 | 海威百家乐赌博机| 百家乐官网玩法介绍图片| 百家乐娱乐网77scs| 百家乐赌台| 澳门百家乐心理| gt百家乐官网平台| 威尼斯人娱乐城惊喜| 金城百家乐官网玩法| 优博注册| 百家乐趋势方向| 老牌百家乐官网娱乐城| 百家乐的弱点| 百家乐官网娱乐城主页| 大发888新澳博| 百家乐桌定制| 赌片百家乐官网的玩法技巧和规则| 申扎县| 百家乐图形的秘密破解| 百家乐庄闲和赢率|