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首页> 外文期刊>Advanced Materials >Hydrogen Isotope Separation in Confined Nanospaces: Carbons, Zeolites, Metal-Organic Frameworks, and Covalent Organic Frameworks
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Hydrogen Isotope Separation in Confined Nanospaces: Carbons, Zeolites, Metal-Organic Frameworks, and Covalent Organic Frameworks

机译:受限纳米空间中的氢同位素分离:碳,沸石,金属有机骨架和共价有机骨架

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摘要

One of the greatest challenges of modern separation technology is separating isotope mixtures in high purity. The separation of hydrogen isotopes can create immense economic value by producing valuable deuterium (D) and tritium (T), which are irreplaceable for various industrial and scientific applications. However, current separation methods suffer from low separation efficiency owing to the similar chemical properties of isotopes; thus, high-purity isotopes are not easily achieved. Recently, nanoporous materials have been proposed as promising candidates and are supported by a newly proposed separation mechanism, i.e., quantum effects. Herein, the fundamentals of the quantum sieving effect of hydrogen isotopes in nanoporous materials are discussed, which are mainly kinetic quantum sieving and chemical-affinity quantum sieving, including the recent advances in the analytical techniques. As examples of nanoporous materials, carbons, zeolites, metal-organic frameworks, and covalent organic frameworks are addressed from computational and experimental standpoints. Understanding the quantum sieving effect in nanospaces and the tailoring of porous materials based on it will open up new opportunities to develop a highly efficient and advanced isotope separation systems.
机译:现代分离技术的最大挑战之一是分离高纯度的同位素混合物。氢同位素的分离可以通过产生有价值的氘(D)和tri(T)来创造巨大的经济价值,这些氘对于各种工业和科学应用都是不可替代的。但是,由于同位素的化学性质相似,目前的分离方法分离效率低。因此,不容易实现高纯度同位素。近来,已经提出了纳米多孔材料作为有前途的候选物,并受到新提出的分离机制即量子效应的支持。在此,讨论了氢同位素在纳米多孔材料中的量子筛分效应的基本原理,主要是动力学量子筛分和化学亲和量子筛分,包括分析技术的最新进展。作为纳米多孔材料的例子,从计算和实验的观点出发,解决了碳,沸石,金属-有机骨架和共价有机骨架的问题。了解纳米空间中的量子筛分效应以及基于纳米筛分的多孔材料的定制将为开发高效,先进的同位素分离系统提供新的机会。

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