论文标题
氦同位素量子通过图形膜筛分
Helium Isotopes Quantum Sieving Through Graphtriyne Membranes
论文作者
论文摘要
我们报告具有具有新相互作用电位的二维(2D)图层层对氦原子筛分的准确量子计算。计算两种氦同位素的热速率常数和渗透率。由于孔比GraphDiyne大,这是Gamma -graphyne家族中最常见的成员,因此可以预期,量子效应的出现更加有限。但是,我们发现一种强大的量子行为可以归因于选择性吸附共振的存在,在低温方向上具有明显的效果。这种效果导致在非常低的温度下出现一些选择性,并且与较轻的同位素相比,重量更重的同位素可以更有效地穿越膜,而与GraphDiyne膜发生的情况相反,GraphDiyne Membranes发生的情况下,低能量的筛分主要由量子隧道统治。在这些情况下,不建议使用更多近似方法,原型过渡状态理论(TST)处理可能会导致较大的错误。
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 gamma - 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 (TST) treatments might lead to large errors.