首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A versatile protocol for the ionothermal synthesis of nanostructured nickel compounds as energy storage materials from a choline chloride-based ionic liquid
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A versatile protocol for the ionothermal synthesis of nanostructured nickel compounds as energy storage materials from a choline chloride-based ionic liquid

机译:从氯化胆碱离子液体中电热合成纳米结构镍化合物作为储能材料的通用协议

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A versatile ionothermal strategy is proposed to synthesize nanostructured nickel compounds as energy storage materials, such as Ni(NH3)6CI2 crystals, nanosheet-like NiCI2, nanoflower-like (IMF) α-Ni(OH)2, and mesoporous NF-NiO. The primal solution is a choline chloride (ChCI)-urea mixture-based ionic liquid with nickel chloride hexahydrate (NiCl2-6H20) dissolved. The proposed ionothermal protocol is attractive and environmental friendly because ChCI and urea are naturally biocompatible compounds. It has been reported that Ni(NH3)6CI2 is an indirect and reversible hydrogen storage material for fuel cells. Herein, we demonstrate that Ni(NH3)6CI2 crystals with octahedral geometry and an open structure can be obtained by maintaining the primal solution in a sealed vessel at 150 °C for 4 hours. A kinetic-to-dynamic growth mechanism is proposed to elucidate the formation of the interesting Ni(NH3)6CI2 structure. Further annealing of the Ni(NH3)6CI2 crystals at 300 °C produces sheet-like NiCI2, which can be utilized as an active material in sodium-ion batteries. Interestingly, with the addition of a small amount of water into the primal solution which has been kept at 150 °C and open to the air for 40 minutes, NF α-Ni(OH)2 can be obtained. Further annealing of the NF α-Ni(OH)2 at 300 °C leads to the formation of NF-NiO with a mesoporous structure, which is demonstrated to be a promising pseudo-capacitive electrode material in a KOH aqueous solution. The rapid activation process, good cycling performance, and high specific capacitance of the NF-NiO electrode are attributed to its high surface area (72.9 m~2 g~(-1)) and the mesoporous structure. We expect that the ionothermal method will have implications for the use of ChCI-urea mixture-based ionic liquids in the large-scale synthesis of advanced functional materials.
机译:提出了一种通用的离子热策略,以合成纳米结构的镍化合物作为储能材料,例如Ni(NH3)6Cl2晶体,纳米片状NiCl2,纳米花状(IMF)α-Ni(OH)2和中孔NF-NiO。原始溶液是溶解了六水合氯化镍(NiCl2-6H20)的基于胆碱氯化物(ChCI)-脲混合物的离子液体。所提出的离子热方案具有吸引力且对环境友好,因为ChCl和尿素是天然的生物相容性化合物。据报道,Ni(NH 3)6 Cl 2是用于燃料电池的间接且可逆的储氢材料。在本文中,我们证明可以通过将原始溶液在密封容器中于150°C保持4小时来获得具有八面体几何形状和开放结构的Ni(NH3)6Cl2晶体。提出了动力学到动力学的生长机理,以阐明有趣的Ni(NH3)6Cl2结构的形成。 Ni(NH3)6Cl2晶体在300°C进一步退火会产生片状NiCl2,可用作钠离子电池的活性材料。有趣的是,向已保持在150°C的原始溶液中添加少量水,并向大气开放40分钟,即可获得NFα-Ni(OH)2。 NFα-Ni(OH)2在300°C下进一步退火会导致形成具有介孔结构的NF-NiO,这被证明是在KOH水溶液中很有希望的伪电容电极材料。 NF-NiO电极的快速活化过程,良好的循环性能和高比电容归因于其高表面积(72.9 m〜2 g〜(-1))和中孔结构。我们期望离子热方法将对高级功能材料的大规模合成中基于ChCl-脲混合物的离子液体的使用产生影响。

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