Page 203 - Дисертація_Влад_Христина_Ігорівна
P. 203

[256] Huang, M., Ouyang, L., Ye, J., Liu, J., Yao, X., Wang, H., Shao, H., Zhu, M.:
                  Hydrogen generation via hydrolysis of magnesium with seawater using Mo, MoO₂,

                  MoO₃ and MoS₂ as catalysts. J. Mater. Chem. A 5, 8566–8575 (2017)
                  [257] Liu, Z., Zhong, J., Leng, H., Xia, G., Yu, X.: Hydrolysis of Mg-based alloys
                  and  their  hydrides  for  efficient  hydrogen  generation.  Int.  J.  Hydrogen  Energy  46,

                  18988–19000 (2021)
                  [258] Ouyang,  L.Z.,  Xu,  Y.J.,  Dong,  H.W.,  Sun,  L.X.,  Zhu,  M.:  Production  of
                  hydrogen via hydrolysis of hydrides in Mg–La system. Int. J. Hydrogen Energy 34,

                  9671–9676 (2009)
                  [259] Tessier, J.-P., Palau, P., Huot, J., Schulz, R., Guay, D.: Hydrogen production
                  and  crystal  structure  of  ball-milled  MgH₂–Ca  and  MgH₂–CaH₂  mixtures.  J.  Alloys

                  Compd. 376, 180–185 (2004)
                  [260] Wang,  H.,  Zhang,  J.,  Liu,  J.W.,  Ouyang,  L.Z.,  Zhu,  M.:  Catalysis  and
                  hydrolysis properties of perovskite hydride NaMgH₃. J. Alloys Compd. 580, S197–

                  S201 (2013)
                  [261] Liu, Y., Wang, X., Liu, H., Dong, Z., Cao, G., Yan, M.: Hydrogen generation
                  from Mg–LiBH₄ hydrolysis improved by AlCl₃ addition. Energy 68, 548–554 (2014
                  [262] Li, S.-L., Song, J.-M., Uan, J.-Y.: Mg–Mg₂X (X = Cu, Sn) eutectic alloy for

                  the Mg₂X nano-lamellar compounds to catalyze hydrolysis reaction for H₂ generation
                  and the recycling of pure X metals from the reaction wastes. J. Alloys Compd. 772,
                  489–498 (2019)

                  [263] Ma,  M.L.,  Duan,  R.M.,  Ouyang,  L.Z.,  Zhu,  X.K.,  Peng,  C.H.,  Zhu,  M.:
                  Hydrogen  generation  via  hydrolysis  of  H-CaMg₂  and  H-CaMg₁.₉Ni₀.₁.  Int.  J.
                  Hydrogen                Energy              42,             22312–22317                 (2017).

                  https://doi.org/10.1016/j.ijhydene.2017.05.159
                  [264] Liu, P.P., Wu, H.W., Wu, C.L., Chen, Y.G., Xu, Y.M., Wang, X.L., Zhang,
                  Y.B.:  Microstructure  characteristics  and  hydrolysis  mechanism  of  Mg–Ca  alloy

                  hydrides for hydrogen generation.  Int. J. Hydrogen Energy 40, 3806–3812 (2015).
                  https://doi.org/10.1016/j.ijhydene.2015.01.105
                  [265] Ouyang, L.Z., Wen, Y.J., Xu, Y.J., Yang, X.S., Sun, L.X., Zhu, M.: The effect
                  of Ni and Al addition on hydrogen generation of Mg₃La hydrides via hydrolysis. Int.

                  J.          Hydrogen              Energy            35,          8161–8165              (2010).
                  https://doi.org/10.1016/j.ijhydene.2009.12.181

                  [266] Ouyang, L.Z., Huang, J.M., Fang, C.J., Wang, H., Liu, J.W., Zhang, Q.A., Sun,
                  D.L., Zhu, M.: The high capacity and controllable hydrolysis rate of Mg₃La hydride.
                  J.          Alloys            Compd.             580,            S317–S319              (2013).
                  https://doi.org/10.1016/j.jallcom.2013.03.153





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