Significance of interphase boundaries on activation of high-entropy alloys for room-temperature hydrogen storage

International Journal of Hydrogen Energy - Tập 50 - Trang 626-636 - 2024
Shivam Dangwal1,2, Kaveh Edalati1,2
1WPI, International Institute for Carbon-Neutral Energy Research (WPI-I2CNER), Kyushu University, Fukuoka 819-0395, Japan
2Department of Automotive Science, Graduate School of Integrated Frontier Sciences, Kyushu University, Fukuoka 819-0395, Japan

Tài liệu tham khảo

Hirscher, 2020, Materials for hydrogen-based energy storage - past, recent progress and future outlook, J Alloys Compd, 827, 153548, 10.1016/j.jallcom.2019.153548 Crabtree, 2008, The hydrogen fuel alternative, MRS Bull, 33, 421, 10.1557/mrs2008.84 Reilly, 1979, Metal hydride technology, Z Phys Chem, 117, 155, 10.1524/zpch.1979.117.117.155 Bellosta von Colbe, 2019, Application of hydrides in hydrogen storage and compression: achievements, outlook and perspectives, Int J Hydrogen Energy, 44, 7780, 10.1016/j.ijhydene.2019.01.104 Edalati, 2020, Reversible room temperature hydrogen storage in high-entropy alloy TiZrCrMnFeNi, Scripta Mater, 178, 387, 10.1016/j.scriptamat.2019.12.009 Montero, 2021, Improving the hydrogen cycling properties by Mg addition in Ti-V-Zr-Nb refractory high entropy alloy, Scripta Mater, 194, 1359, 10.1016/j.scriptamat.2020.113699 Liu, 2021, Microstructure and hydrogen storage properties of Ti-V-Cr based BCC-type high entropy alloys, Int J Hydrogen Energy, 46, 28709, 10.1016/j.ijhydene.2021.06.137 Kunce, 2014, Microstructure and hydrogen storage properties of a TiZrNbMoV high entropy alloy synthesized using laser engineered net shaping (lens), Int J Hydrogen Energy, 39, 9904, 10.1016/j.ijhydene.2014.02.067 Ek, 2021, Elucidating the effects of the composition on hydrogen sorption in TiVZrNbHf-based high-entropy alloys, Inorg Chem, 60, 1124, 10.1021/acs.inorgchem.0c03270 Sleiman, 2021, Effect of particle size, pressure and temperature on the activation process of hydrogen absorption in TiVZrHfNb high entropy alloy, J Alloys Compd, 861, 158615, 10.1016/j.jallcom.2021.158615 Montero, 2020, Hydrogen storage properties of the refractory Ti–V–Zr–Nb–Ta multi-principal element alloy, J Alloys Compd, 835, 155376, 10.1016/j.jallcom.2020.155376 Shen, 2019, A novel TiZrHfMoNb high-entropy alloy for solar thermal energy storage, Nanomaterials, 9, 248, 10.3390/nano9020248 Zlotea, 2019, Hydrogen sorption in TiZrNbHfTa high entropy alloy, J Alloys Compd, 775, 667, 10.1016/j.jallcom.2018.10.108 Shen, 2020, Compositional dependence of hydrogenation performance of Ti–Zr–Hf–Mo–Nb high-entropy alloys for hydrogen/tritium storage, J Mater Sci Technol, 55, 116, 10.1016/j.jmst.2019.08.060 Zaluska, 1999, Nanocrystalline magnesium for hydrogen storage, J Alloys Compd, 288, 217, 10.1016/S0925-8388(99)00073-0 Hongo, 2015, Significance of grain boundaries and stacking faults on hydrogen storage properties of Mg2Ni intermetallics processed by high-pressure torsion, Acta Mater, 92, 46, 10.1016/j.actamat.2015.03.036 Edalati, 2018, High-pressure torsion for new hydrogen storage materials, Sci Technol Adv Mater, 19, 185, 10.1080/14686996.2018.1435131 Edalati, 2016, Activation of titanium-vanadium alloy for hydrogen storage by introduction of nanograins and edge dislocations using high-pressure torsion, Int J Hydrogen Energy, 41, 8917, 10.1016/j.ijhydene.2016.03.146 Pinkerton, 2007, Phase boundaries and reversibility of LiBH4/MgH2 hydrogen storage material, J Phys Chem C, 111, 12881, 10.1021/jp0742867 Leiva, 2019, Hydrogen Storage in Mg and Mg-based alloys and composites processed by severe plastic deformation, Mater Trans, 60, 1561, 10.2320/matertrans.MF201927 Kim, 2022, Effect of microstructural refinement and Na addition on hydrogenation kinetics of cast Mg–Al–La alloy during the first hydrogen absorption process, Magnes Technol, 69 Edalati, 2023, Impact of severe plastic deformation on kinetics and thermodynamics of hydrogen storage in magnesium and its alloys, J Mater Sci Technol, 146, 221, 10.1016/j.jmst.2022.10.068 Nagai, 1987, Microstructure and hydriding characteristics of FeTi alloys containing manganese, J Less-Common Met, 134, 275, 10.1016/0022-5088(87)90567-4 Mohammadi, 2022, High-entropy hydrides for fast and reversible hydrogen storage at room temperature: binding-energy engineering via first-principles calculations and experiments, Acta Mater, 236, 118117, 10.1016/j.actamat.2022.118117 Yurchenko, 2017, Laves-phase formation criterion for high entropy alloys, Mater Sci Techol, 33, 17, 10.1080/02670836.2016.1153277 Floriano, 2020, Hydrogen storage in TiZrNbFeNi high entropy alloys, designed by thermodynamic calculations, Int J Hydrogen Energy, 45, 33759, 10.1016/j.ijhydene.2020.09.047 Floriano, 2021, Hydrogen storage properties of new A3B2-type TiZrNbCrFe high-entropy alloy, Int J Hydrogen Energy, 46, 23757, 10.1016/j.ijhydene.2021.04.181 Akiba, 1998, Hydrogen absorption by Laves phase related BCC solid solution, Intermetallics, 6, 461, 10.1016/S0966-9795(97)00088-5 Bououdina, 2000, Phase stability and neutron diffraction studies of the laves phase compounds Zr(Cr1-xMox)2 with 0.0 ≤ x ≤ 0.5 and their hydrides, Int J Hydrogen Energy, 25, 1059, 10.1016/S0360-3199(99)00087-7 Charbonnier, 2021, Tuning the hydrogenation properties of Ti1+yCr2-xMnx laves phase compounds for high pressure metal-hydride compressors, Int J Hydrogen Energy, 46, 36369, 10.1016/j.ijhydene.2021.08.143 Chen, 2018, Hydrogen storage of C14-CruFevMnwTixVyZrz alloys, Mater Chem Phys, 210, 336, 10.1016/j.matchemphys.2017.08.008 Brocq, 2015, Insights into the phase diagram of the CrMnFeCoNi high entropy alloy, Acta Mater, 88, 355, 10.1016/j.actamat.2015.01.068 Couzinié, 2014, Microstructure of a near-equimolar refractory high-entropy alloy, Mater Lett, 126, 285, 10.1016/j.matlet.2014.04.062 Chen, 2006, Effect of vanadium addition on the microstructure, hardness, and wear resistance of Al0.5CoCrCuFeNi high- entropy alloy, Metall Mater Trans A, 37, 1363, 10.1007/s11661-006-0081-3 Zhang, 2019 Mishra, 2020, Formation and stability of C14 type Laves phase in multi component high-entropy alloys, J Alloys Compd, 832, 153764, 10.1016/j.jallcom.2020.153764 Zhang, 2020, Study on the hydrogen storage properties of a TiZrNbTa high entropy alloy, Int J Hydrogen Energy, 45, 5367, 10.1016/j.ijhydene.2019.05.214 Akrami, 2021, High-entropy ceramics: review of principles, production and applications, Mater Sci Eng R, 146, 100644, 10.1016/j.mser.2021.100644 Nygård, 2019, Counting electrons - a new approach to tailor the hydrogen sorption properties of high-entropy alloys, Acta Mater, 175, 121, 10.1016/j.actamat.2019.06.002 Gross, 1998, Mechanically milled Mg composites for hydrogen storage: the relationship between morphology and kinetics, J Alloys Compd, 269, 259, 10.1016/S0925-8388(97)00627-0 Sujan, 2020, An overview on TiFe intermetallic for solid- state hydrogen storage: microstructure, hydrogenation and fabrication processes, Crit Rev Solid State Mater Sci, 45, 410, 10.1080/10408436.2019.1652143 Skripnyuk, 2004, The effect of ball milling and equal channel angular pressing on the hydrogen absorption/desorption properties of Mg–4.95 wt% Zn–0.71 wt% Zr (ZK60) alloy, Acta Mater, 52, 405, 10.1016/j.actamat.2003.09.025 Revesz, 2010, The effect of high-pressure torsion on the microstructure and hydrogen absorption kinetics of ball-milled Mg70Ni30, J Alloys Compd, 504, 83, 10.1016/j.jallcom.2010.05.058 Marco, 2020, Mechanical synthesis and hydrogen storage characterization of MgVCr and MgVTiCrFe high-entropy alloy, Adv Eng Mater, 22, 1901079, 10.1002/adem.201901079 Lin, 2022, Recent advances in metastable alloys for hydrogen storage: a review, Rare Met, 41, 1797, 10.1007/s12598-021-01917-8 Yu, 2004, The activation mechanism of Ti–V-based hydrogen storage alloys, J Alloys Compd, 375, 221, 10.1016/j.jallcom.2003.11.027 Yu, 2004, Body-centered-cubic phase hydrogen storage alloy with improved capacity and fast activation, Appl Phys Lett, 84, 3199, 10.1063/1.1712021 Miraglia, 2012, Hydrogen sorption properties of compounds based on BCC Ti1–xV1–yCr1+x+y alloys, J Alloys Compd, 536, 1, 10.1016/j.jallcom.2012.05.008 Tanaka, 2000, Evaluation of elastic strain energy associated with the formation of hydride precipitates in LaNi5, Intermetallics, 8, 613, 10.1016/S0966-9795(99)00154-5 Syed, 2022, Heterointerface and grain boundary energies, and their influence on microstructure in multiphase ceramics, Acta Mater, 227, 117685, 10.1016/j.actamat.2022.117685 Turnbull, 1950, Kinetics of heterogeneous nucleation, J Chem Phys, 18, 198, 10.1063/1.1747588 Dematteis, 2018, Phase stability and hydrogen desorption in a quinary equimolar mixture of light-metals borohydrides, Int J Hydrogen Energy, 43, 16793, 10.1016/j.ijhydene.2018.05.048 Nygård, 2019, Hydrogen storage in high-entropy alloys with varying degree of local lattice strain, Int J Hydrogen Energy, 44, 29140, 10.1016/j.ijhydene.2019.03.223 Park, 2021, Study on hydrogen absorption and surface properties of TiZrVNbCr high entropy alloy, Intermetallics, 130, 107074, 10.1016/j.intermet.2020.107074 Strozi, 2021, An approach to design single BCC Mg-containing high entropy alloys for hydrogen storage applications, Int J Hydrogen Energy, 46, 25555, 10.1016/j.ijhydene.2021.05.087 Shahi, 2023, Perspectives of high entropy alloys as hydrogen storage materials, Int J Hydrogen Energy, 48, 21412, 10.1016/j.ijhydene.2022.02.113 Ma, 2023, Study on microstructure and the hydrogen storage behavior of a TiVZrNbFe high-entropy alloy, Intermetallics, 157, 107885, 10.1016/j.intermet.2023.107885 Serrano, 2023, Development of Ti-V-Nb-Cr-Mn high entropy alloys for hydrogen storage, J Alloys Compd, 945, 169289, 10.1016/j.jallcom.2023.169289