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Helium Isotopes Quantum Sieving through Graphtriyne Membranes

机译:氦同位素量子筛分通过石灰膜膜筛分

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摘要

We report accurate quantum calculations of the sieving of Helium atoms by two-dimensional (2D) graphtriyne layers with a new interaction potential. Thermal rate constants and permeances in an ample temperature range are computed and compared for both Helium isotopes. With a pore larger than graphdiyne, the most common member of the γ-graphyne family, it could be expected that the appearance of quantum effects were more limited. We find, however, a strong quantum behavior that can be attributed to the presence of selective adsorption resonances, with a pronounced effect in the low temperature regime. This effect leads to the appearance of some selectivity at very low temperatures and the possibility for the heavier isotope to cross the membrane more efficiently than the lighter, contrarily to what happened with graphdiyne membranes, where the sieving at low energy is predominantly ruled by quantum tunneling. The use of more approximate methods could be not advisable in these situations and prototypical transition state theory treatments might lead to large errors.
机译:通过具有新的相互作用电位,通过二维(2D)平板图层报告精确的量子计算氦原子筛分。计算热速率常数和允许在充足的温度范围内,并将其与氦同位素进行比较。孔隙大于graphdiyne,最常见的γ-graphyne家族成员,可以预期量子效应的外观更有限。然而,我们发现强的量子行为,可以归因于选择性吸附共振的存在,在低温方案中具有明显的效果。这种效果导致在非常低的温度下的一些选择性的外观以及较重的同位素比较轻更有效地通过较轻的膜的可能性,这反对甲状腺膜的发生,其中低能量的筛分主要由量子隧道统治。在这些情况下,使用更常见的方法可以不可建立,并且原型过渡状态理论治疗可能导致大错误。

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