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金属载体二氧化硅纳米笼中的氙气捕获。

Xenon Trapping in Metal-Supported Silica Nanocages.

机构信息

Materials Science and Chemical Engineering Department, State University of New York at Stony Brook, 100 Nicolls Rd, Stony Brook, NY, 11794, USA.

Center for Functional Nanomaterials, Brookhaven National Laboratory, 735 Brookhaven Ave, Upton, NY, 11973, USA.

出版信息

Small. 2021 Oct;17(39):e2103661. doi: 10.1002/smll.202103661. Epub 2021 Aug 31.

Abstract

Xenon (Xe) is a valuable and scarce noble gas used in various applications, including lighting, electronics, and anesthetics, among many others. It is also a volatile byproduct of the nuclear fission of uranium. A novel material architecture consisting of silicate nanocages in contact with a metal surface and an approach for trapping single Xe atoms in these cages is presented. The trapping is done at low Xe pressures and temperatures between 400 and 600 K, and the process is monitored in situ using synchrotron-based ambient pressure X-ray photoelectron spectroscopy. Release of the Xe from the cages occurs only when heating to temperatures above 750 K. A model that explains the experimental trapping kinetics is proposed and tested using Monte Carlo methods. Density functional theory calculations show activation energies for Xe exiting the cages consistent with experiments. This work can have significant implications in various fields, including Xe production, nuclear power, nuclear waste remediation, and nonproliferation of nuclear weapons. The results are also expected to apply to argon, krypton, and radon, opening an even more comprehensive range of applications.

摘要

氙(Xe)是一种有价值且稀缺的稀有气体,用于各种应用,包括照明、电子和麻醉等。它也是铀核裂变的挥发性副产品。本文提出了一种由硅酸盐纳米笼与金属表面接触的新型材料结构,以及一种在这些笼中捕获单个氙原子的方法。在 400 至 600 K 的低氙气压和温度下进行捕获,并使用基于同步加速器的环境压力 X 射线光电子能谱原位监测该过程。只有在加热到 750 K 以上的温度时,Xe 才会从笼中释放出来。提出并使用蒙特卡罗方法对解释实验捕获动力学的模型进行了测试。密度泛函理论计算表明,Xe 离开笼的激活能与实验结果一致。这项工作可能对包括氙气生产、核能、核废料修复以及核武器不扩散在内的各个领域产生重大影响。预计结果也将适用于氩、氪和氡,从而开辟更广泛的应用范围。

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