Enhancing the activation and cycling properties of V-based alloys by trace Ce doping

Haiyan Leng , Shangxuan Gao , Shuai Wang , Fenghang Jiang , Xinlong Shen , Siwei Chen , Xingbo Han , Qun Luo , Lei Yan , V. N. Kudiiarov

International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (5) : 1485 -1495.

PDF
International Journal of Minerals, Metallurgy, and Materials ›› 2026, Vol. 33 ›› Issue (5) :1485 -1495. DOI: 10.1007/s12613-026-3458-x
Research Article
research-article
Enhancing the activation and cycling properties of V-based alloys by trace Ce doping
Author information +
History +
PDF

Abstract

This study focused on improving the activation property and cycling stability of V78Ti6Cr16 alloy through trace Ce doping. V78Ti6Cr16Cex (x = 0, 0.2, 0.4) alloys were prepared by arc melting. The activation property, the kinetic and thermodynamic properties, the cycling stability and the cycling stability mechanism of the prepared alloys were investigated. The results show that trace Ce doping significantly improves the activation performance of the alloy. The kinetics changed little and the thermodynamics changed a little by trace Ce doping. Crucially, trace Ce doping remarkably improved cycling stability of the alloy. V78Ti6Cr16Ce0.2 exhibited a capacity retention rate of 97.43% after 400 cycles, substantially higher than the 93.06% of undoped alloy. Even after 1000 cycles, V78Ti6Cr16Ce0.2 maintained higher than 90% retention, demonstrating excellent cycling stability for practical applications. X-ray diffraction and compressing test reveal that Ce doping effectively improves the crystal structure of the alloys by increasing the cell volume and enhancing the mechanical properties of the alloy, thereby improving the structure stability of the alloy during cycling. Transmission electron microscope analysis indicated that the defect density progressively increases with cycling in undoped alloy, which is the main reason for the capacity decay. But the defect density is much less in V78Ti6Cr16Ce0.2 alloy compared with undoped alloy, which contributes to its superior capacity retention rate. This work provides a new strategy for enhancing hydrogen storage properties via trace rare-earth doping.

Keywords

trace Ce doping / V-based alloys / hydrogen storage / cycling performance / activation property

Cite this article

Download citation ▾
Haiyan Leng, Shangxuan Gao, Shuai Wang, Fenghang Jiang, Xinlong Shen, Siwei Chen, Xingbo Han, Qun Luo, Lei Yan, V. N. Kudiiarov. Enhancing the activation and cycling properties of V-based alloys by trace Ce doping. International Journal of Minerals, Metallurgy, and Materials, 2026, 33 (5) : 1485-1495 DOI:10.1007/s12613-026-3458-x

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Staffell I, Scamman D, Velazquez Abad A, et al.. The role of hydrogen and fuel cells in the global energy system. Energy Environ Sci., 2019, 12(2): 463.

[2]

Zinkle SJ, Was GS. Materials challenges in nuclear energy. Acta Mater., 2013, 61(3): 735.

[3]

L.Z. Ouyang, K. Chen, J. Jiang, X.S. Yang, and M. Zhu, Hydrogen storage in light-metal based systems: A review, J. Alloy. Compd., 829(2020), art. No. 154597.

[4]

Rusman NAA, Dahari M. A review on the current progress of metal hydrides material for solid-state hydrogen storage applications. Int. J. Hydrogen Energy, 2016, 41(28): 12108.

[5]

Kumar S, Jain A, Ichikawa T, Kojima Y, Dey GK. Development of vanadium based hydrogen storage material: A review. Renewable Sustainable Energy Rev., 2017, 72(C): 791.

[6]

Suarez-Garcia F, Vilaplana-Ortego E, Kunowsky M, Kimura M, Oya A, Linares-Solano A. Activation of polymer blend carbon nanofibres by alkaline hydroxides and their hydrogen storage performances. Int. J. Hydrogen Energy, 2009, 34(22): 9141.

[7]

Aceves S, Berry G, Martinezfrias J, Espinosaloza F. Vehicular storage of hydrogen in insulated pressure vessels. Int. J. Hydrogen Energy, 2006, 31(15): 2274.

[8]

C. Sun, C.X. Wang, T. Ha, J. Lee, J. Shim, and Y. Kim, A brief review of characterization techniques with different length scales for hydrogen storage materials, Nano Energy, 113(2023), art. No. 108554.

[9]

X.Q. Zhu, M.J. Yang, R.T. Yue, et al., Effect of co-doping graphene and anthracite on hydrogen storage of Mg/MgH2, Solid State Sci., 147(2024), art. No. 107385.

[10]

Guo FH, Zhang TB, Shi LM, Song L. Hydrogen absorption/desorption cycling performance of Mg-based alloys with in-situ formed Mg2Ni and LaHx (x = 2, 3) nanocrystallines. J. Magnes. Alloys, 2023, 11(4): 1180.

[11]

Wang XC, Jia YX, Xiao XZ, et al.. Robust architecture of 2D nano Mg-based borohydride on graphene with superior reversible hydrogen storage performance. J. Mater. Sci. Technol., 2023, 146: 121.

[12]

Jiang H, Ding Z, Li YT, et al.. Hierarchical interface engineering for advanced magnesium-based hydrogen storage: Synergistic effects of structural design and compositional modification. Chem. Sci., 2025, 16(18): 7610.

[13]

C.W. Duan, Y.T. Tian, X.Y. Wang, et al., Anchoring Mo single atoms on N-CNTs synchronizes hydrogenation/dehydrogenation property of Mg/MgH2, Nano Energy, 113(2023), art. No. 108536.

[14]

Shang YY, Pistidda C, Gizer G, Klassen T, Dornheim M. Mg-based materials for hydrogen storage. J. Magnes. Alloys, 2021, 9(6): 1837.

[15]

Itoh H, Arashima H, Kubo K, Kabutomori T, Ohnishi K. Improvement of cyclic durability of BCC structured Ti–Cr–V alloys. J. Alloy. Compd., 2005, 404–406: 417.

[16]

X.Y. Xue, C.M. Ma, Y.R. Liu, H. Wang, and Q.J. Chen, Impacts of Ce dopants on the hydrogen storage performance of Ti–Cr–V alloys, J. Alloy. Compd., 934(2023), art. No. 167947.

[17]

Akiba E, Okada M. Metallic hydrides III: Body-centeredcubic solid-solution alloys. MRS Bull., 2002, 27(9): 699.

[18]

Balcerzak M, Wagstaffe M, Robles R, Pruneda M, Noei H. Effect of Cr on the hydrogen storage and electronic properties of BCC alloys: Experimental and first-principles study. Int. J. Hydrogen Energy, 2020, 45(53): 28996.

[19]

Mi J, F, Liu XP, Jiang LJ, Li ZN, Wang SM. Enhancement of cerium and hydrogen storage property of a low-cost Ti–V based BCC alloy prepared by commercial ferrovanadium. J. Rare Earths, 2010, 28(5): 781.

[20]

Ulmer U, Asano K, Patyk A, et al.. Cost reduction possibilities of vanadium-based solid solutions–Microstructural, thermodynamic, cyclic and environmental effects of ferrovanadium substitution. J. Alloy. Compd., 2015, 648: 1024.

[21]

Yan YG, Chen YG, Liang H, Zhou XX, Wu CL, Tao MD. Effect of Ce on the structure and hydrogen storage properties of V55Ti22.5Cr16.1Fe6.4. J. Alloy. Compd., 2007, 429(1–2): 301.

[22]

Wu CL, Zheng X, Chen YG, Tao MD, Tong GR, Zhou JJ. Hydrogen storage and cyclic properties of V60Ti(21.4+x)Cr(6.6−x)Fe12 (0 ≤ x ≤ 3) alloys. Int. J. Hydrogen Energy, 2010, 35(15): 8130.

[23]

Kim H, Sakaki K, Ogawa H, et al.. Origin of degradation in the reversible hydrogen storage capacity of V1−xTix alloys from the atomic pair distribution function analysis. J. Phys. Chem. C, 2013, 117(50): 26543.

[24]

Kuriiwa T, Maruyama T, Kamegawa A, Okada M. Effects of V content on hydrogen storage properties of V–Ti–Cr alloys with high desorption pressure. Int. J. Hydrogen Energy, 2010, 35(17): 9082.

[25]

Goshome K, Endo N, Maeda T. Evaluation of the pressure dependence of the cycle durability and thermodynamics of a metal hydride compressor composed of ternary V40 and V70TiCr. Int. J. Hydrogen Energy, 2021, 46(14): 9479.

[26]

M. Fattahzadeh, A. Kaflou, and V. Dashtizad, “Effect of milling and adding yttrium on sorption characteristics of Zr–Co based nanostructure chemical getter”, J. Alloy. Compd., 846(2020), art. No. 155329.

[27]

Zhang XX, Xiao HQ, He XC, et al.. Impacts of Y dopants on the microstructure and cyclic stability of TiCrVFeMo alloys. Int. J. Hydrogen Energy, 2024, 61: 1220.

[28]

Singh BK, Cho SW, Bartwal KS. Effect on structure and hydrogen storage characteristics of composite alloys Ti0.32Cr0.43V0.25 with LaNi5 and rare-earth elements La, Ce, Y. J. Alloy. Compd., 2009, 478(1–2): 785.

[29]

Chen XY, Chen RR, Yu K, et al.. Effect of Ce substitution on hydrogen absorption/desorption of Laves phase-related BCC solid solution Ti33V37Mn30 alloy. J. Alloy. Compd., 2019, 783: 617.

[30]

Mi J, Liu XP, Li Y, et al.. Effect of cerium content on microstructure and hydrogen storage performance of Ti24Cr17.5V50Fe8.5Cex (x = 0–1.0) alloys. J. Rare Earths, 2009, 27(1): 154.

[31]

Liu XP, Cuevas F, Jiang LJ, Latroche M, Li ZN, Wang SM. Improvement of the hydrogen storage properties of Ti–Cr–V–Fe BCC alloy by Ce addition. J. Alloy. Compd., 2009, 476(1–2): 403.

[32]

Yang S, Luo ZF, Yang G, et al.. Influence of rare earth doping on hydrogen absorption properties of Zr7V5Fe alloy. J. Rare Earths, 2025, 43(1): 218.

[33]

Liu XP, Jiang LJ, Li ZN, Huang Z, Wang SM. Improve plateau property of Ti32Cr46V22 BCC alloy with heat treatment and Ce additive. J. Alloy. Compd., 2009, 471(1–2): L36.

[34]

Sun DL, Latroche M, Percheron-Guégan A. Effects of lanthanum or cerium on the equilibrium of ZrNi1.2Mn0.6V0.2Cr0.1 and its related hydrogenation properties. J. Alloy. Compd., 1997, 248(1–2): 215.

[35]

Yao ZD, Liu LX, Xiao XZ, Wang CT, Jiang LJ, Chen LX. Effect of rare earth doping on the hydrogen storage performance of Ti1.02Cr1.1Mn0.3Fe0.6 alloy for hybrid hydrogen storage application. J. Alloy. Compd., 2018, 731: 524.

[36]

Mi J, Guo XM, Liu XP, et al.. Effect of Al on microstructures and hydrogen storage properties of Ti26.5Cr20(V0.45Fe0.085)100−xAlxCe0.5 alloy. J. Alloy. Compd., 2009, 485(1–2): 324.

[37]

Bêche E, Charvin P, Perarnau D, Abanades S, Flamant G. Ce 3d XPS investigation of cerium oxides and mixed cerium oxide (CexTiyOz). Surf. Interface Anal., 2008, 40(3–4): 264.

[38]

S.Y. Shen, Y.A. Li, L.Z. Ouyang, L. Zhang, M. Zhu, and Z.W. Liu, V–Ti-based solid solution alloys for solid-state hydrogen storage, Nano Micro Lett., 17(2025), No. 1, art. No. 175.

[39]

Liao B, Lei YQ, Chen LX, Lu GL, Pan HG, Wang QD. The effect of Al substitution for Ni on the structure and electrochemical properties of AB3-type La2Mg(Ni1−xAlx)9 (x =0–0.05) alloys. J. Alloy. Compd., 2005, 404–406: 665.

[40]

Hang ZM, Xiao XZ, Yu KR, Li SQ, Chen CP, Chen LX. Influence of Fe content on the microstructure and hydrogen storage properties of Ti16Zr5Cr22V57−xFex (x = 2–8) alloys. Int. J. Hydrogen Energy, 2010, 35(15): 8143.

RIGHTS & PERMISSIONS

University of Science and Technology Beijing

PDF

0

Accesses

0

Citation

Detail

Sections
Recommended

/