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使用第一性原理计算预测稳定的氡氟化物分子和几何优化。

Prediction of stable radon fluoride molecules and geometry optimization using first-principles calculations.

机构信息

Division of Advanced Nuclear Engineering (DANE), Pohang University of Science and Technology (POSTECH), 77 Cheongam-ro, Nam-Gu, Pohang, Gyeongbuk, 790-784, Republic of Korea.

Department of Chemistry, Pohang University of Science and Technology (POSTECH), 77 Cheongam-ro, Nam-Gu, Pohang, Gyeongbuk, 790-784, Republic of Korea.

出版信息

Sci Rep. 2023 Feb 18;13(1):2898. doi: 10.1038/s41598-023-29313-5.

Abstract

Noble gases possess extremely low reactivity because their valence shells are closed. However, previous studies have suggested that these gases can form molecules when they combine with other elements with high electron affinity, such as fluorine. Radon is a naturally occurring radioactive noble gas, and the formation of radon-fluorine molecules is of significant interest owing to its potential application in future technologies that address environmental radioactivity. Nevertheless, because all isotopes of radon are radioactive and the longest radon half-life is only 3.82 days, experiments on radon chemistry have been limited. Here, we study the formation of radon molecules using first-principles calculations; additionally, possible compositions of radon fluorides are predicted using a crystal structure prediction approach. Similar to xenon fluorides, di-, tetra-, and hexafluorides are found to be stabilized. Coupled-cluster calculations reveal that RnF stabilizes with O point symmetry, unlike XeF with C symmetry. Moreover, we provide the vibrational spectra of our predicted radon fluorides as a reference. The molecular stability of radon di-, tetra-, and hexafluoride obtained through calculations may lead to advances in radon chemistry.

摘要

稀有气体由于其价壳层封闭,因此具有极低的反应活性。然而,先前的研究表明,当这些气体与具有高电子亲和力的其他元素(如氟)结合时,它们可以形成分子。氡是一种天然存在的放射性稀有气体,由于其在未来解决环境放射性的技术中的潜在应用,因此形成氡-氟分子引起了极大的关注。然而,由于所有氡同位素都是放射性的,并且最长的氡半衰期仅为 3.82 天,因此对氡化学的实验受到限制。在这里,我们使用第一性原理计算研究了氡分子的形成;此外,还使用晶体结构预测方法预测了氡氟化物的可能组成。类似于氙氟化物,发现二氟、四氟和六氟化物稳定存在。耦合簇计算表明,与 C 对称的 XeF 不同,RnF 以 O 点对称稳定。此外,我们还提供了预测的氡氟化物的振动光谱作为参考。通过计算获得的氡二氟、四氟和六氟化物的分子稳定性可能会推动氡化学的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e6e/9938903/d7377c54dd27/41598_2023_29313_Fig1_HTML.jpg

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