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[1]Xinkai Wang, Qiankun Yang, Weisong Wu, Wei Zhang, Yong Zhang, Dingshun Yan,Kefu Gan, Bin Liu*, Zhiming Li, Excellent radiation resistance via enforced local non-directional He diffusion in a WTaCrV multicomponent alloy containing coherent ordered nanoprecipitates, Acta Materialia. 2024, 120501, 2024
[2]Li Jia,Yi Xiaoai, Liu Bin*,Fang Qihong,Peter K. Liaw. A phase field crystal model for real-time grain boundary formation and motion in complex concentration alloy. Acta Materialia. 2024, 281, 120425., 2024
[3]Jian Wang, Ao Fu, Bin Liu*, Yuxuan Chen, Yuankui Cao, Hui Zhou, Bingfeng Wang, Xiaofeng Li, Jia Li, Qihong Fang, Yong Liu, Weakening the mechanical property anisotropy of additively manufactured medium entropy alloy by controlling the cellular structure, Additive Manufacturing, 89 (2024) 104303.Additive Manufacturing
[4]Heng Duan, Bin Liu*, Ao Fu, Junyang He, Tao Yang, C. T. Liu, Yong Liu, Segregation enabled outstanding combination of mechanical and corrosion properties in a FeCrNi medium entropy alloy manufactured by selective laser melting. Journal of Materials Science & Technology, 2022, 10:207-214.
[5]Ao Fu, Bin Liu*, Zezhou Li, Bingfeng Wang, Yuankui Cao, Yong Liu, Dynamic deformation behavior of a FeCrNi medium entropy alloy. Journal of Materials Science & Technology, 2022, 20:120-128.
[6]Xin Zhang,Jun-Ping Hu,Na Fu,Wei-Bin Zhou,Bin Liu*,Qi Deng*,Xiong-Wei Wu,Comprehensive review on zinc-ion battery anode: Challenges and strategies, InfoMat. 2022, e12306.
[7]Wenshu Li, YiYu Huang, ZhongHao Xie, Haoyu Chen, Weihua Li, Bin Liu*, Bingfeng Wang*, Mechanical property and cellular structure of an additive manufactured FeCoNiCrMo0.2 high-entropy alloy at high velocity deformation, Journal of Materials Science & Technology, 2023, 139: 156-166.
[8]Ao Fu, Bin Liu*, Bo Liu, Yuankui Cao, Jian Wang, Tao Liao, Jia Li, Qihong Fang, Peter K. Liaw, Yong Liu, A novel cobalt-free oxide dispersion strengthened medium-entropy alloy with outstanding mechanical properties and irradiation resistance, Journal of Materials Science & Technology, 2023, 152: 190-200.
[9]Jing Peng, Jia Li, Bin Liu*, Jian Wang, Haotian Chen, Hui Feng, Xin Zeng, Heng Duan, Yuankui Cao, Junyang He, Peter K. Liaw, Qihong Fang, Formation process and mechanical properties in selective laser melted multi-principal-element alloys, Journal of Materials Science & Technology, 2023, 133:12-22.
[10]B. Liu, Y.P. Li, H. Matsumoto, Y.B. Liu, Y. Liu, A. Chiba*, Thermomechanical characterization of P/M Ti-Fe-Mo-Y alloy with a fine lamellar microstructure, Materials Science and Engineering A, 2011, 528: 2345-2352.
[11]B. Liu, Y. Li, H. Matsumoto, Y. Koizumi, Y. Liu, A. Chiba*, Enhanced grain refinement through deformation induced α precipitation in hot working of α+ β titanium alloy, Advanced Engineering Materials, 2012, 14: 785-789.
[12]Yuankui Cao, F. Zeng, J. Lu, B. Liu*, Y. Liu, Y. Li, In Situ Synthesis of TiB/Ti6Al4V Composites Reinforced with Nano TiB through SPS, Materials Transactions, 2015, 56: 259-263.
[13]B. Liu*, Y. Liu, C. Qiu, C. Zhou, J. Li, H. Li, Y. He, Design of low-cost titanium aluminide intermetallics, Journal of Alloys and Compounds, 2015, 640: 298-304.
[14]B. Liu*, Y. Liu, L. Huang, H. Li, Y. He, Characterization of phase transformation during hot compressive deformation in a β-stabilized Ti-45Al-7Nb-0.4W-0.15B alloy, Materials Characterization, 2015, 105: 113-117.
[15]Z. Chen, B. Liu*, Y. Liu, F. Zeng, J. Lu, Microstructural evolution in a powder metallurgical Ti-7Mo alloy with continuous oxygen gradient, Journal of Central South University, 2016, 23: 508-514.
[16]Yuankui Cao, F. Zeng, B. Liu*, Y. Liu, J. Lu, Z. Gan, H. Tang, Characterization of fatigue properties of powder metallurgy titanium alloy, Materials Science and Engineering A, 2016, 654: 418-425.
[17]Canxu Zhou, B. Liu*, Y. Liu, K. Zhao, J. Lu, C. Qiu, J. Li, Y. He, Effects of Si on microstructures and high temperature properties of beta stabilized TiAl alloy, Materials Transactions, 2016, 57: 461-465.
[18]Jia Li, Q. Fang, B. Liu*, Y. Liu, Y. Liu, Mechanical behaviors of AlCrFeCuNi high-entropy alloys under uniaxial tension via molecular dynamics simulation, RSC Advances, 2016, 6: 76409-76419.
[19]Jia Li, Q. Fang, B. Liu*, Y. Liu, The effects of pore and second-phase particle on the mechanical properties of machining copper matrix from molecular dynamic simulation, Applied Surface Science, 2016, 384: 419-431.
[20]Jia Li, B. Liu*, H. Luo, Q. Fang, Y. Liu, Y. Liu, A molecular dynamics investigation into plastic deformation mechanism of nanocrystalline copper for different nanoscratching rates, Computational Materials Science, 2016, 118: 66-76.
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