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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Magnetic Induction Swing Adsorption: An Energy Efficient Route to Porous Adsorbent Regeneration
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Magnetic Induction Swing Adsorption: An Energy Efficient Route to Porous Adsorbent Regeneration

机译:磁感应摆动吸附:多孔吸附剂再生的节能途径

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摘要

Metal-organic frameworks (MOFs) are promising nanomaterials with unprecedented capacity to store small molecules. Despite this huge capacity, proposed methods for releasing these molecules are not yet feasible at a meaningful scale, largely because of the strong binding of the molecules and the thermally insulating nature of the adsorbent. It is likely that large amounts of energy would be required for operation at scale. Furthermore, the high adsorption capacity of MOFs is not typically matched by, a high working capacity; adsorbed molecules are not readily retrieved. Here we: show a series of magnetic framework composites (MFCs) synthesized from ferri-magnetic MgFe2O4 nanoparticles and the Zr-based MOF UiO-66 can be deployed in a magnetic induction swing adsorption process for CO2 capture and release. Exposure of the MFCs to an alternating current magnetic field resulted in the generation of heat by the embedded magnetic nanoparticle and fast release of CO2 from the MOF, with an unprecedented 100% of adsorbed CO2: released under a 42 mT field. This was achieved at a regeneration time of 240. s. The efficiency of the MISA process was shown to be dependent on the amount of MFC used, with efficiencies reaching 60% at just a gram scale. These local "nanoheaters" overcome the thermally insulating nature of the adsorbent, which has promising implications for use at scale. Additionally, the ability to access 100% of the adsorption capacity permits the use of strongly adsorbing, high-capacity MOFs that were previously discarded.
机译:金属有机框架(MOF)是有前途的纳米材料,具有存储小分子的空前能力。尽管具有如此大的容量,但提议的释放这些分子的方法仍无法在有意义的规模上应用,这主要是因为分子之间的牢固结合以及吸附剂的隔热性质。大规模运行可能需要大量能量。此外,MOF的高吸附能力通常无法与高工作能力相匹配。吸附的分子不易回收。在这里,我们:显示了一系列由亚铁磁性MgFe2O4纳米粒子和Zr基MOF UiO-66合成的磁性骨架复合材料(MFC),可以在磁感应摆动吸附过程中用于CO2的捕获和释放。 MFC暴露于交流磁场中会导致嵌入的磁性纳米颗粒产生热量,并从MOF中快速释放出CO2,在42 mT的磁场下释放出前所未有的100%吸附的CO2。这是在240 s的再生时间下实现的。结果表明,MISA工艺的效率取决于所用MFC的数量,仅克级的效率就达到60%。这些局部的“纳米加热器”克服了吸附剂的绝热性质,这对于大规模使用具有希望的意义。此外,达到100%吸附容量的能力允许使用以前已丢弃的强吸附,高容量MOF。

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