Hostname: page-component-586b7cd67f-tf8b9 Total loading time: 0 Render date: 2024-11-23T01:14:21.788Z Has data issue: false hasContentIssue false

Improved hydrogen storage properties of Ti-doped Mg95Ni5 powder produced by hydriding combustion synthesis

Published online by Cambridge University Press:  20 March 2015

Yajun Tan
Affiliation:
College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, People's Republic of China
Yunfeng Zhu
Affiliation:
College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, People's Republic of China
Jianguang Yuan
Affiliation:
College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, People's Republic of China
Liquan Li*
Affiliation:
College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, People's Republic of China
*
a)Address all correspondence to this author. e-mail: [email protected]
Get access

Abstract

Ti was added to Mg–Ni alloy (Mg95Ni5) by a novel hydriding combustion synthesis (HCS) process. The effect of Ti on hydrogen absorption/desorption kinetics of Mg95Ni5 was investigated. The results showed that Ti had superior catalytic effects on hydrogen storage properties of Mg95Ni5, which required only 80 s to reach its saturated hydrogen absorption capacity of 6.29 wt% at 473 K and released 5.49 wt% hydrogen within 900 s at 553 K. Based on an Arrhenius analysis, the activation energy of the hydrogen desorption process was 80.8 kJ mol−1 for the main phase of MgH2 in the Ti-doped Mg95Ni5. The excellent hydriding/dehydriding properties were related to the existence of TiH1.924, which improved the efficiency of mechanical milling and was helpful in the refinement of the crystallite size of MgH2, resulting in more fresh surface area and grain boundary area. Besides, it was thought to restrain the Mg particles from growth during the hydrogenation/dehydrogenation cycles.

Type
Articles
Copyright
Copyright © Materials Research Society 2015 

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

Schlapbach, L. and Züttel, A.: Hydrogen-storage materials for mobile applications. Nature 414, 353 (2001).CrossRefGoogle ScholarPubMed
Gao, M.X., Gu, J., Pan, H.G., Wang, Y.L., Liu, Y.F., Liang, C., and Guo, Z.X.: Ca(BH4)2-LiBH4-MgH2: A novel ternary hydrogen storage system with superior long-term cycling performance. J. Mater. Chem. 1, 12285 (2013).CrossRefGoogle Scholar
Amama, P.B., Grant, J.T., Spowart, J.E., shamberger, P.J., Voevodin, A.A., and Fisher, T.S.: Catalytic influence of Ni-based additives on the dehydrogenation properties of ball milled MgH2. J. Mater. Res. 26, 2725 (2011).CrossRefGoogle Scholar
Jia, Y., Guo, Y.A., Zou, J., and Yao, X.D.: Hydrogenation/dehydrogenation in MgH2-activated carbon composites prepared by ball milling. Int. J. Hydrogen Energy 37, 7579 (2012).CrossRefGoogle Scholar
Ouyang, L.Z., Cao, Z.J., Wang, H., Liu, J.W., Sun, D.L., Zhang, Q.A., and Zhu, M.: Enhanced dehydriding thermodynamics and kinetics in Mg(In)–MgF2 composite directly synthesized by plasma milling. J. Alloys Compd. 586, 113 (2014).CrossRefGoogle Scholar
Li, Q., Lin, Q., Chou, K.C., Jiang, L.J., and Zhan, F.: Hydrogen storage properties of mechanically alloyed Mg–8 mol% LaNi0.5 composite. J. Mater. Res. 19, 2871 (2011).CrossRefGoogle Scholar
Li, P., Wan, Q., Li, Z.L., Zhai, F.Q., Li, Y.L., Cui, L.Q., Qu, X.H., and Volinsky, A.A.: MgH2 dehydrogenation properties improved by MnFe2O4 nanoparticles. J. Power Sources 239, 201 (2013).CrossRefGoogle Scholar
Ma, L.P., Wang, P., Kang, X.D., and Chen, H.M.: Preliminary investigation on the catalytic mechanism of TiF3 additive in MgH2–TiF3 H-storage system. J. Mater. Res. 22, 1779 (2011).CrossRefGoogle Scholar
Zhou, C.S., Fang, Z.Z., Ren, C., Li, J.Z., and Lu, J.: Effect of Ti intermetallic catalysts on hydrogen storage properties of magnesium hydride. J. Phys. Chem. C 117, 12973 (2013).CrossRefGoogle Scholar
Ma, L.P., Wang, P., and Cheng, H.M.: Hydrogen sorption kinetics of MgH2 catalyzed with titanium compounds. Int. J. Hydrogen Energy 35, 3046 (2010).CrossRefGoogle Scholar
Grigorova, E., Spassova, M., Spassov, T., and Khristov, M.: Hydrogen sorption properties of 90 wt% MgH2–10 wt% MeSi2 (Me = Ti, Cr). J. Mater. Sci. 49, 2647 (2014).CrossRefGoogle Scholar
Zhang, J., Huang, Y.N., Mao, C., and Peng, P.: Synergistic effect of Ti and F co-doping on dehydrogenation properties of MgH2 from first-principles calculations. J. Alloys Compd. 528, 205 (2012).CrossRefGoogle Scholar
Liu, X.F., Zhu, Y.F., and Li, L.Q.: Hydrogen storage properties of Mg100-xNix (x=5, 11.3, 20, 25) composites prepared by hydriding combustion synthesis followed by mechanical milling (HCS+MM). Intermetallics 15, 1582 (2007).CrossRefGoogle Scholar
Zhu, Y.F., Liu, Y.F., Gu, H., and Li, L.Q.: Structural and hydriding/dehydriding properties of Mg–La–Ni-based composites. J. Alloys Compd. 477, 440 (2009).CrossRefGoogle Scholar
Gu, H., Zhu, Y.F., and Li, L.Q.: Hydrogen storage properties of Mg–Ni–Cu prepared by hydriding combustion synthesis and mechanical milling (HCS+MM). Int. J. Hydrogen Energy 34, 2654 (2009).CrossRefGoogle Scholar
Zhu, Y.F., Liu, Z.B., Yang, Y., Gu, H., Li, L.Q., and Cai, M.: Hydrogen storage properties of Mg-Ni-C system hydrogen storage materials prepared by hydriding combustion synthesis and mechanical milling. Int. J. Hydrogen Energy 35, 6350 (2010).CrossRefGoogle Scholar
Zhu, Y.F., Yang, Y., Wei, L.J., Zhao, Z.L., and Li, L.Q.: Hydrogen storage properties of Mg–Ni–Fe composites prepared by hydriding combustion synthesis and mechanical milling. J. Alloys Compd. 520, 207 (2012).CrossRefGoogle Scholar
Shahi, R.R., Tiwari, A.P., Shaz, M.A., and Srivastava, O.N.: Studies on de/rehydrogenation characteristics of nanocrystalline MgH2 co-catalyzed with Ti, Fe and Ni. Int. J. Hydrogen Energy 38, 2778 (2013).CrossRefGoogle Scholar
Cui, J., Wang, H., Liu, J.W., Ouyang, L.Z., Zhang, Q.A., Sun, D.L., Yao, X.D., and Zhu, M.: Remarkable enhancement in dehydrogenation of MgH2 by a nano-coating of multi-valence Ti-based catalysts. J. Mater. Chem. A 1, 5603 (2013).CrossRefGoogle Scholar
Pitt, M.P., Paskevicius, M., Webb, C.J., Sheppard, D.A., Buckley, C.E., and Gray, E.M.: The synthesis of nanoscopic Ti based alloys and their effects on the MgH2 system compared with the MgH2 + 0.01Nb2O5 benchmark. Int. J. Hydrogen Energy 37, 4227 (2012).CrossRefGoogle Scholar
Pang, Y.P., Liu, Y.F., Zhang, X., Gao, M.X., and Pang, H.G.: Role of particle size, grain size, microstrain and lattice distortion in improved dehydrogenation properties of the ball-milled Mg(AlH4)2. Int. J. Hydrogen Energy 38, 1460 (2013).CrossRefGoogle Scholar
Shahi, R.R., Bhatnagar, A., Pandey, S.K., Dixit, V., and Srivastava, O.N.: Effects of Ti-based catalysts and synergistic effect of SWCNTs-TiF3 on hydrogen uptake and release from MgH2. Int. J. Hydrogen Energy 39, 14255 (2014).CrossRefGoogle Scholar
Zhu, C.Y. and Akiyama, T.: Zebra-striped fibers in relation to the H2 sorption properties for MgH2 nanofibers produced by a vapor–solid process. Cryst. Growth Des. 12, 4043 (2012).CrossRefGoogle Scholar
Huot, J., Liang, G., Boily, S., Neste, A.V., and Schulz, R.: Structural study and hydrogen sorption kinetics of ball-milled magnesium hydride. J. Alloys Compd. 293295, 495 (1999).CrossRefGoogle Scholar
Liu, T., Qin, C.G., Zhu, M., Cao, Y.R., Shen, H.L., and Li, X.G.: Synthesis and hydrogen storage properties of Mg–La–Al nanoparticles. J. Power Sources 219, 100 (2012).CrossRefGoogle Scholar
Wronski, Z.S., Carpenter, G.J.C., Czujko, T., and Varin, R.A.: A new nanonickel catalyst for hydrogen storage in solid-state magnesium hydrides. Int. J. Hydrogen Energy 36, 1159 (2010).CrossRefGoogle Scholar
Choi, Y.J., Lu, J., Sohn, H.Y., and Fang, Z.Z.: Hydrogen storage properties of the Mg–Ti–H system prepared by high-energy–high-pressure reactive milling. J. Power Sources 180, 491 (2008).CrossRefGoogle Scholar
Song, M.Y., Kwak, Y.J., Lee, S.H., Song, J., and Mumm, D.R.: Enhancement of hydrogen-storage performance of MgH2 by Mg2Ni formation and hydride-forming Ti addition. Int. J. Hydrogen Energy 37, 18133 (2012).CrossRefGoogle Scholar
Song, M.Y., Kwak, Y.J., Shin, H.S., Lee, S.H., and Kim, B.G.: Improvement of hydrogen-storage properties of MgH2 by Ni, LiBH4, and Ti addition. Int. J. Hydrogen Energy 38, 1910 (2013).CrossRefGoogle Scholar