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Scalable and efficient separation of hydrogen isotopes using graphene-based electrochemical pumping

机译:使用基于石墨烯的电化学泵技术可扩展且高效地分离氢同位素

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摘要

Thousands of tons of isotopic mixtures are processed annually for heavy-water production and tritium decontamination. The existing technologies remain extremely energy intensive and require large capital investments. New approaches are needed to reduce the industry's footprint. Recently, micrometre-size crystals of graphene are shown to act as efficient sieves for hydrogen isotopes pumped through graphene electrochemically. Here we report a fully-scalable approach, using graphene obtained by chemical vapour deposition, which allows a proton-deuteron separation factor of around 8, despite cracks and imperfections. The energy consumption is projected to be orders of magnitude smaller with respect to existing technologies. A membrane based on 30 m2 of graphene, a readily accessible amount, could provide a heavy-water output comparable to that of modern plants. Even higher efficiency is expected for tritium separation. With no fundamental obstacles for scaling up, the technology's simplicity, efficiency and green credentials call for consideration by the nuclear and related industries.
机译:每年要处理数千吨的同位素混合物,以用于重水生产和de净化。现有技术仍然非常耗能,需要大量资本投资。需要新的方法来减少该行业的足迹。最近,显示出微米级的石墨烯晶体可作为电化学筛分通过石墨烯的氢同位素的有效筛子。在这里,我们报告了一种完全可扩展的方法,使用通过化学气相沉积获得的石墨烯,尽管存在裂纹和缺陷,但质子-氘核的分离系数约为8。相对于现有技术,能源消耗预计将减少几个数量级。基于30µm 2 石墨烯的膜(一种易于获取的量)可以提供与现代植物相当的重水产量。预期separation分离的效率更高。在没有扩大规模的基本障碍的情况下,该技术的简单性,效率和绿色证书要求核工业及相关行业考虑。

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