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HCS+MM法制備鎂基復(fù)合儲(chǔ)氫材料結(jié)構(gòu)及儲(chǔ)氫性能
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國(guó)家高技術(shù)研究發(fā)展計(jì)劃(863計(jì)劃) (2007AA05Z110);國(guó)家自然科學(xué)基金項(xiàng)目(50871052)


Structures and Hydrogen Storage Properties of Magnesium-Based Composites
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    摘要:

    采用氫化燃燒合成法制備Mg95Ni5-x%TiFe0.8Mn0.2Zr0.05(x=0, 10, 20, 30)(質(zhì)量分?jǐn)?shù))復(fù)合物,然后將氫化燃燒合成產(chǎn)物進(jìn)行機(jī)械球磨得到鎂基復(fù)合儲(chǔ)氫材料。采用XRD、SEM、EDS及PCT研究材料的相結(jié)構(gòu)、表面形貌、顆?;瘜W(xué)成分以及吸放氫性能。研究表明,添加30% TiFe0.8Mn0.2Zr0.05合金形成的復(fù)合物具有最佳的綜合吸放氫性能:在373 K,50 s內(nèi)基本達(dá)到飽和吸氫量4.11% (質(zhì)量分?jǐn)?shù));在493和523 K,1800 s內(nèi)放氫量分別為1.91%和4.3%;其起始放氫溫度為420 K,與Mg95Ni5相比降低了20 K,吸放氫性能的改善與復(fù)合物的組織結(jié)構(gòu)密切相關(guān)。此外,TiFe0.8Mn0.2Zr0.05的加入改善了復(fù)合物的放氫動(dòng)力學(xué)性能

    Abstract:

    Mg95Ni5-x%TiFe0.8Mn0.2Zr0.05 (x = 0, 10, 20, 30) (mass fraction) composites were prepared by hydriding combustion synthesis (HCS) and the products were mechanically milled (MM) to obtain Mg-based hydrogen-storage composites. By means of X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive X-ray spectrometer (EDS) and pressure-composition-temperature (PCT) measurements, the phase structure, microstructure, particle composition and hydriding/dehydriding properties of the composites were studied. Results show that the Mg95Ni5-30%TiFe0.8Mn0.2Zr0.05 composite has the best comprehensive hydriding/dehydridingn properties. It requires only 50 s to absorb its saturated hydrogen capacity of 4.11 wt% at 373 K and desorbs 1.91 wt% and 4.3 wt% hydrogen within 1800 s at 493 K and 523 K, respectively. Moreover, the dehydriding onset temperature of the composite is 420 K, which is 20 K lower than that of Mg95Ni5. The improvement of hydriding/dehydriding properties are related greatly to the structures of the composites, and the addition of TiFe0.8Mn0.2Zr0.05 can improve the dehydriding kinetics of the composites.

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劉志兵,朱云峰,李李泉. HCS+MM法制備鎂基復(fù)合儲(chǔ)氫材料結(jié)構(gòu)及儲(chǔ)氫性能[J].稀有金屬材料與工程,2011,40(9):1653~1657.[Liu Zhibing, Zhu Yunfeng, Li Liquan. Structures and Hydrogen Storage Properties of Magnesium-Based Composites[J]. Rare Metal Materials and Engineering,2011,40(9):1653~1657.]
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  • 收稿日期:2010-09-25
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