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参考文献

[1] JACOBS M H G, SPENCER P J. A critical thermodynamic evaluation of the system Mg-Ni[J]. Calphad, 1998,22(4):513-525.

[2] REILLY J J, WISWALL R H. Reaction of hydrogen with alloys of magnesium and nickel and the formation of Mg 2 NiH 4 [J]. Inorganic Chemistry, 1968,7 (11):2254-2256.

[3] POLANSKI M, PtoCIN'[SKI T, KUNCE I, et al. Dynamic synthesis of ternary Mg 2 FeH 6 [J].International Journal of Hydrogen Energy, 2010,35 (3):1257-1266.

[4] POLANSKI M, NIELSEN T K, CERENIUS Y, et al. Synthesis and decomposition mechanisms of Mg 2 FeH 6 studied by in-situ synchrotron X-ray diffraction and highpressure DSC [J]. International Journal of Hydrogen Energy, 2010,35 (8):3578-3582.

[5] CASTRO F J, GENNARI F C. Effect of the nature of the starting materials on the formation of Mg 2 FeH 6 [J]. Journal of Alloys and Compounds, 2004,375 (1-2):292-296.

[6] ASANO K, AKIBA E. Direct synthesis of Mg-Ti-H FCC hydrides from MgH 2 and Ti by means of ball milling[J]. Journal of Alloys and Compounds, 2009,481(1-2):L8-L11.

[7]ASANO K, ENOKI H, AKIBA E. Synthesis of Mg-Ti FCC hydrides from Mg-Ti BCC alloys[J]. Journal of Alloys and Compounds, 2009,478(1-2):117-120.

[8] ASANO K, ENOKI H, AKIBA E. Synthesis process of Mg-Ti BCC alloys by means of ball milling[J]. Journal of Alloys and Compounds, 2009,486(1-2):115-123.

[9]李谦,周国治.稀土镁合金中关键相及其界面与性能的相关性[J].中国有色金属学报,2019,29(9):1934-1952.

[10] ZHANG Q A, LIU D D, WANG Q Q, et al. Superior hydrogen storage kinetics of Mg 12 YNi alloy with a long-period stacking ordered phase[J]. Scripta Materialia,2011,65(3):233-236.

[11] LI Y, GU Q, LI Q, et al. In-situ synchrotron X-ray diffraction investigation on hydrogen-induced decomposition of long period stacking ordered structure in Mg-Ni-Y system[J]. Scripta Materialia, 2017,127:102-107.

[12]NIE J F, ZHU Y M, MORTON A J. On the structure, transformation and deformation of long-period stacking ordered phases in Mg-Y-Zn alloys[J]. Metallurgical and Materials Transactions A, 2014,45(8):3338-3348.

[13] YAMASAKI M, MATSUSHITA M, HAGIHARA K, et al. Highly ordered 10Htype long period stacking order phase in a Mg-Zn-Y ternary alloy[J]. Scripta Materialia, 2014,78:13-16.

[14] LIU C, ZHU Y, LUO Q, et al. A 12R long-period stacking-ordered structure in a Mg-Ni-Y alloy[J]. Journal of Materials Science & Technology, 2018,34 (12):2235-2239.

[15] LUO Q, GU Q, LIU B, et al. Achieving superior cycling stability by in situ forming NdH 2 -Mg-Mg 2 Ni nanocomposites[J]. Journal of Materials Chemistry A, 2018,6(46):23308-23317.

[16]OURANE B, GAUDIN E, LU Y F, et al. The new ternary intermetallic NdNiMg 5 :Hydrogen sorption properties and more [J]. Materials Research Bulletin, 2015,61:275-279.

[17] OURANE B, GAUDIN E, ZOUARI R, et al. NdNiMg 5 , a new magnesium-rich phase with an unusual structural type[J]. Inorganic Chemistry, 2013,52(23):13289-13291.

[18] PILLING N B, MEMBER M S, BEDWORTH R E. The oxidation of metals at high temperatures[J]. Journal of the Institute of Metals, 1923,29:529-591.

[19] CHOU K C, LUO Q, LI Q, et al. Influence of the density of oxide on oxidation kinetics[J]. Intermetallics, 2014,47:17-22.

[20] LI T, LI Q, LONG H, et al. Interpretation of negative temperature dependence of hydriding reaction in LaNi 5 -Mg alloys by modified Chou model[J]. Catalysis Today, 2018,318:97-102.

[21] LUO Q, CAI Q, GU Q, et al. Negative Thermal Expansion and Phase Transition of Low-temperature Mg 2 NiH 4 [J]. Journal of Magnesium and Alloys, 2022, In press. https://doi. org/10.1016/j. jma. 2022.09.012.

[22] SHEPPARD D A, BUCKLEY C E. The potential of metal hydrides paired with compressed hydrogen as thermal energy storage for concentrating solar power plants[J]. International Journal of Hydrogen Energy, 2019,44(18):9143-9163.

[23] POHLMANN C, RÖNTZSCH L, HU J, et al. Tailored heat transfer characteristics of pelletized LiNH 2 -MgH 2 and NaAlH 4 hydrogen storage materials[J]. Journal of Power Sources, 2012,205:173-179.

[24] CHAISE A, DE RANGO P, MARTY P, et al. Enhancement of hydrogen sorption in magnesium hydride using expanded natural graphite[J]. International Journal of Hydrogen Energy, 2009,34(20):8589-8596.

[25] SUISSA E, JACOB I, HADARI Z. Experimental measurements and general conclusions on the effective thermal conductivity of powdered metal hydrides[J]. Journal of the Less Common Metals, 1984,104(2):287-295.

[26] ISHIDO Y, KAWAMURA M, ONO S. Thermal conductivity of magnesium-nickel hydride powder beds in a hydrogen atmosphere[J]. International Journal of Hydrogen Energy, 1982,7(2):173-182.

[27]大角泰章.金属氢化物的性质与应用[M].北京:化学工业出版社,1990.

[28] BERUBE V, RADTKE G, DRESSELHAUS M, et al. Size effects on the hydrogen storage properties of nanostructured metal hydrides: A review [J]. International Journal of Energy Research, 2007,31(6-7):637-663. GJncOdhUzLuKSlCXAV+3ZbwegJGA+3fSLW7IIHnIULc/CT1ZuwBZKSg7xei4JSK/

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