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Toward 3D Printed Hydrogen Storage Materials Made with ABS-MOF Composites

机译:迈向由ABS-MOF复合材料制成的3D打印储氢材料

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摘要

The push to advance efficient, renewable, and clean energy sources has brought with it an effort to generate materials that are capable of storing hydrogen. Metal-organic framework materials (MOFs) have been the focus of many such studies as they are categorized for their large internal surface areas. We have addressed one of the major shortcomings of MOFs (their processibility) by creating and 3D printing a composite of acrylonitrile butadiene styrene (ABS) and MOF-5, a prototypical MOF, which is often used to benchmark H2 uptake capacity of other MOFs. The ABS-MOF-5 composites can be printed at MOF-5 compositions of 10% and below. Other physical and mechanical properties of the polymer (glass transition temperature, stress and strain at the breaking point, and Young’s modulus) either remain unchanged or show some degree of hardening due to the interaction between the polymer and the MOF. We do observe some MOF-5 degradation through the blending process, likely due to the ambient humidity through the purification and solvent casting steps. Even with this degradation, the MOF still retains some of its ability to uptake H2, seen in the ability of the composite to uptake more H2 than the pure polymer. The experiments and results described here represent a significant first step toward 3D printing MOF-5-based materials for H2 storage.
机译:推动发展高效,可再生和清洁能源的努力带来了产生能够储存氢的材料的努力。金属有机框架材料(MOF)一直是许多此类研究的重点,因为它们因其较大的内表面积而被分类。我们通过创建并3D打印丙烯腈丁二烯苯乙烯(ABS)和MOF-5(一种典型的MOF)的复合材料来解决MOF的主要缺点之一(可加工性),MOF-5通常用于基准其他MOF的H2吸收能力。 ABS-MOF-5复合材料可以以10%以下的MOF-5组成印刷。聚合物的其他物理和机械性能(玻璃化转变温度,断裂点处的应力和应变以及杨氏模量)要么保持不变,要么由于聚合物和MOF之间的相互作用而显示出一定程度的硬化。在混合过程中,我们确实观察到MOF-5的降解,这可能是由于纯化和溶剂浇铸步骤中环境湿度的影响。即使发生这种降解,从复合材料比纯聚合物吸收更多的H2的能力来看,MOF仍保留了其吸收H2的能力。这里描述的实验和结果代表了迈向3D打印基于MOF-5的H2存储材料的重要第一步。

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