论文标题

在富含Ti富含Ti和Mn取代的Ti(FE,MN)的可逆氘负荷过程中,原位中子衍射0.90合金

In-situ neutron diffraction during reversible deuterium loading in Ti-rich and Mn-substituted Ti(Fe,Mn)0.90 alloys

论文作者

Dematteis, Erika Michela, Barale, Jussara, Capurso, Giovanni, Deledda, Stefano, Sørby, Magnus H., Cuevas, Fermin, Latroche, Michel, Baricco, Marcello

论文摘要

氢是一种有效的能源载体,可以从可再生能源产生,从而使朝向无二氧化碳的能量的过渡。氢可以在固态中长时间储存​​,并具有合适的合金。 Ti-Ti-Tife0.90化合物对第一次氢化表现出温和的激活过程,而Ti(Fe,Mn)0.90取代合金可以导致平衡压力的微调作为最终应用的函数。在这项研究中,挫折(0.90-X)MNX合金(X = 0、0.05和0.10)及其氘化的晶体结构已通过原位中子衍射确定,同时记录室温下的压力分解等温线。该研究旨在分析MN在Ti-rich Ti(FE,MN)中对Fe取代的影响0.90合金对可逆氘负荷过程中结构特性的影响,这仍然无法解决,很少探索。激活后,将样品分别转移到定制的不锈钢和铝合金细胞中,用于分别在Ill和ISIS中子设施的氘和ISIS中子设施期间用于原位中子中子衍射实验。这项研究使人们可以通过确定脱水过程中的体积膨胀来对氢型合金的工业应用中的工业应用中的工业应用,对抗氢气罐在储能系统中集成的氢气罐的工业应用方面有着惊人的了解。此外,研究表明,MN的不同含量不会显着改变相变期间的体积扩张,仅影响γ相的氘含量和\ b {eta}相的细胞演化。该研究证实,吸收后γ相的氘化结构分别对应于S.G. CMMM,P2221和PM-3M。

Hydrogen is an efficient energy carrier that can be produced from renewable sources, enabling the transition towards CO2-free energy. Hydrogen can be stored for a long period in the solid-state, with suitable alloys. Ti-rich TiFe0.90 compound exhibits a mild activation process for the first hydrogenation, and Ti(Fe,Mn)0.90 substituted alloys can lead to the fine tuning of equilibrium pressure as a function of the final application. In this study, the crystal structure of TiFe(0.90-x)Mnx alloys (x = 0, 0.05 and 0.10) and their deuterides has been determined by in-situ neutron diffraction, while recording Pressure-Composition Isotherms at room temperature. The investigation aims at analysing the influence of Mn for Fe substitution in Ti-rich Ti(Fe,Mn)0.90 alloys on structural properties during reversible deuterium loading, which is still unsolved and seldom explored. After activation, samples have been transferred into custom-made stainless-steel and aluminium alloy cells used for in-situ neutron diffraction experiments during deuterium loading at ILL and ISIS neutron facilities, respectively. The study enables remarkable understanding on hydrogen storage, basic structural knowledge, and support to the industrial application of TiFe-type alloys for integrated hydrogen tank in energy storage systems by determining the volume expansion during deuteration. Furthermore, the study demonstrates that different contents of Mn do not significantly change the volumetric expansion during phase transitions, affecting only the deuterium content for the γ phase and the cell evolution for the \b{eta} phase. The study confirms that the deuterated structures of the γ phase upon absorption, \b{eta} and α phase upon desorption, correspond to S.G. Cmmm, P2221 and Pm-3m, respectively.

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