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Liu et al. J. Mater. Inf. 2026, 6, 18                                            Page 27 of 29





               REFERENCES
               1.  Clouet, E.; Caillard, D.; Chaari, N.; Onimus, F.; Rodney, D. Dislocation locking versus easy glide in titanium and zirconium. Nat. Mater.
                  2015, 14, 931-6. DOI PubMed
               2.  Li, X.; Lu, K. Playing with defects in metals. Nat. Mater. 2017, 16, 700-1. DOI PubMed
               3.  Yu, Q.; Shan, Z. W.; Li, J.; et al. Strong crystal size effect on deformation twinning. Nature 2010, 463, 335-8. DOI PubMed
               4.  Banerjee, D.; Williams, J. Perspectives on titanium science and technology. Acta. Mater. 2013, 61, 844-79. DOI
               5.  Chen, R.; Tan, C.; You, Z.; et al. Effect of α phase on high-strain rate deformation behavior of laser melting deposited
                  Ti-6.5Al-1Mo-1V-2Zr titanium alloy. Mater. Sci. Eng. A. 2019, 750, 81-90. DOI
               6.  Zong, X.; Li, Z.; Li, J.; et al. High strain rate response of Ti-6.5Al-3.5Mo-1.5Zr-0.3Si titanium alloy fabricated by laser additive
                  manufacturing. J. Alloys. Compd. 2019, 781, 47-55. DOI
               7.  Huang, B.; Miao, X.; Luo, X.; Yang, Y.; Zhang, Y. Microstructure and texture evolution near the adiabatic shear band (ASB) in TC17
                  titanium alloy with starting equiaxed microstructure studied by EBSD. Mater. Charact. 2019, 151, 151-65. DOI
               8.  Hao, F.; Liu, X.; Du, Y.; et al. Excellent dynamic mechanical properties of a newly developed titanium alloy with bimodal structure. J.
                  Alloys. Compd. 2023, 961, 170980. DOI
               9.  Tiamiyu, A.; Odeshi, A.; Szpunar, J. Multiple strengthening sources and adiabatic shear banding during high strain-rate deformation of
                  AISI 321 austenitic stainless steel: effects of grain size and strain rate. Mater. Sci. Eng. A. 2018, 711, 233-49. DOI
               10.  Li, Z.; Wang, B.; Zhao, S.; Valiev, R. Z.; Vecchio, K. S.; Meyers, M. A. Dynamic deformation and failure of ultrafine-grained titanium.
                  Acta. Mater. 2017, 125, 210-8. DOI
               11.  Arab, A.; Chen, P.; Guo, Y. Effects of microstructure on the dynamic properties of TA15 titanium alloy. Mech. Mater. 2019, 137,
                  103121. DOI
               12.  Chen, B.; Sun, W. Transitional structure of {332}<113> β  twin boundary in a deformed metastable β-type Ti-Nb-based alloy, revealed by
                  atomic resolution electron microscopy. Scr. Mater. 2018, 150, 115-9. DOI
               13.  Qi, Y.; Zhou, Y.; Yu, X.; Chu, Z.; Ding, X.; Sun, J. Strengthening mechanisms of a near-α titanium alloy with high strength and impact
                  resistance. J. Mater. Res. Technol. 2025, 38, 1664-74. DOI
               14.  Wang, H.; Tu, X.; Guo, P.; et al. Impact toughness and its deformation behavior of a novel low-cost titanium alloy. J. Mater. Res.
                  Technol. 2025, 35, 4412-26. DOI
               15.  Tang, S.; Su, J.; Li, L.; Han, Y.; Sing, S. L.; Fan, J. Achieving superior high-temperature strength and ductility in near-α titanium alloys
                  by in-situ silicide modulation. J. Mater. Sci. Technol. 2025, 237, 38-53. DOI
               16.  Dai, J.; Tang, B.; Wang, C.; et al. Deciphering the impact toughening mechanism of α+β titanium alloy with lamellar microstructure:
                  from crack initiation and propagation perspectives. J. Mater. Sci. Technol. 2026, 249, 214-29. DOI
               17.  Shi, W.; Li, J.; Wang, C. Study on action mechanisms of alloy element for adiabatic shearing sensitivity. AIP. Adv. 2019, 9, 095043. DOI
               18.  Li, D.; Hui, S.; Ye, W.; Li, C. Microstructure and mechanical properties of a new high‐strength and high‐toughness titanium alloy. Rare.
                  Met. 2023, 42, 281-7. DOI
               19.  Lu, H.; Ji, P.; Li, B.; et al. Mechanical properties and deformation mechanism of a novel metastable β-type Ti–4V–2Mo–2Fe alloy.
                  Mater. Sci. Eng. A. 2022, 848, 143376. DOI
               20.  Li, X.; Wang, X.; Liu, K.; et al. Hierarchical structure and deformation behavior of a novel multicomponent β titanium alloy with
                  ultrahigh strength. J. Mater. Sci. Technol. 2022, 107, 227-42. DOI
               21.  Zhu, X.; Fan, Q.; Wang, D.; et al. Influence of twins found in adiabatic shear bands on dynamic recrystallization of a near β
                  Ti-5.5Mo-7.2Al-4.5Zr-2.6Sn-2.1Cr alloy. Mater. Sci. Eng. A. 2022, 842, 143084. DOI
               22.  Xu, G.; Zhao, X.; Xia, W.; et al. A review on microstructure design, processing, and strengthening mechanism of high-strength titanium
                  alloys. Prog. Nat. Sci. Mater. Int. 2025, 35, 258-77. DOI
               23.  Wang, W. Y.; Li, G.; Liu, Z.; et al. Materials genome engineering and intelligent science: the endless frontier in AI+ era. Sci. Technol.
                  Rev. 2025, 43, 93-109. DOI
               24.  Xie, J. Prospects of materials genome engineering frontiers. Mater. Genome. Eng. Adv. 2023, 1, e17. DOI
               25.  Liu, Z. Perspective on materials genome®. Chin. Sci. Bull. 2014, 59, 1619-23. DOI
               26.  Xie, M.; Gan, Y.; Wang, H. Research on new material power strategy by 2035. Chin. J. Eng. Sci. 2020, 22, 1. DOI
               27.  Xie, J.; Su, Y.; Zhang, D.; Feng, Q. A vision of materials genome engineering in China. Engineering 2022, 10, 10-2. DOI
               28.  Liu, Z. Building materials genome from ground‐state configuration to engineering advance. Mater. Genome. Eng. Adv. 2023, 1, e15.
                  DOI
               29.  Geng, X.; Wang, F.; Wu, H.; et al. Data‐driven and artificial intelligence accelerated steel material research and intelligent
                  manufacturing technology. Mater. Genome. Eng. Adv. 2023, 1, e10. DOI
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