{"title":"Prediction of Cyclic O<sub>6</sub> Molecules Stabilized by Helium under Pressure.","authors":"Jingyu Hou, Qiang Zhu, Xiao-Ji Weng, Xi Shao, Xiao Dong, Hui-Tian Wang, Xiang-Feng Zhou, Yongjun Tian","doi":"10.1002/advs.202415517","DOIUrl":null,"url":null,"abstract":"<p><p>Oxygen usually exists in the form of diatomic molecules at ambient conditions. At high pressure, it undergoes a series of phase transitions from diatomic O<sub>2</sub> to O<sub>8</sub> cluster and ultimately dissociates into a polymeric O<sub>4</sub> spiral chain structure. Intriguingly, the commonly found cyclic hexameric molecules in other group VIA elements (e.g., S<sub>6</sub> and Se<sub>6</sub>) are never reported in the bulk oxygen. Through extensive computational crystal structure search, herein it is reported that such hexameric O<sub>6</sub> molecules can exist in a stable compound HeO<sub>3</sub> above 1.9 TPa. The first-principles calculations reveal that, during the reaction by mixing oxygen with helium, the insertion of helium does not only expand the lattice volume, but also relieves the electron lone pair repulsion among diatomic O<sub>2</sub>, and thus significantly promoting the formation of cyclic O<sub>6</sub> molecules. Furthermore, the transition pathway calculations demonstrate that molecular O<sub>2</sub> is dissociated first, and then six oxygen atoms form a polymeric digital 2-shaped intermediate O<sub>6</sub>. Subsequently, each unstable intermediate O<sub>6</sub> decomposes into two intermedia O<sub>3</sub> trimers. Finally, O<sub>3</sub> trimers transform into cyclic O<sub>6</sub> molecules at high pressure. This study expands the known molecular forms of oxygen and suggests a route to the synthesis of intriguing cyclic O<sub>6</sub> molecules.</p>","PeriodicalId":117,"journal":{"name":"Advanced Science","volume":" ","pages":"e2415517"},"PeriodicalIF":14.3000,"publicationDate":"2025-01-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Advanced Science","FirstCategoryId":"88","ListUrlMain":"https://doi.org/10.1002/advs.202415517","RegionNum":1,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0
Abstract
Oxygen usually exists in the form of diatomic molecules at ambient conditions. At high pressure, it undergoes a series of phase transitions from diatomic O2 to O8 cluster and ultimately dissociates into a polymeric O4 spiral chain structure. Intriguingly, the commonly found cyclic hexameric molecules in other group VIA elements (e.g., S6 and Se6) are never reported in the bulk oxygen. Through extensive computational crystal structure search, herein it is reported that such hexameric O6 molecules can exist in a stable compound HeO3 above 1.9 TPa. The first-principles calculations reveal that, during the reaction by mixing oxygen with helium, the insertion of helium does not only expand the lattice volume, but also relieves the electron lone pair repulsion among diatomic O2, and thus significantly promoting the formation of cyclic O6 molecules. Furthermore, the transition pathway calculations demonstrate that molecular O2 is dissociated first, and then six oxygen atoms form a polymeric digital 2-shaped intermediate O6. Subsequently, each unstable intermediate O6 decomposes into two intermedia O3 trimers. Finally, O3 trimers transform into cyclic O6 molecules at high pressure. This study expands the known molecular forms of oxygen and suggests a route to the synthesis of intriguing cyclic O6 molecules.
期刊介绍:
Advanced Science is a prestigious open access journal that focuses on interdisciplinary research in materials science, physics, chemistry, medical and life sciences, and engineering. The journal aims to promote cutting-edge research by employing a rigorous and impartial review process. It is committed to presenting research articles with the highest quality production standards, ensuring maximum accessibility of top scientific findings. With its vibrant and innovative publication platform, Advanced Science seeks to revolutionize the dissemination and organization of scientific knowledge.