Three-step formation of diamonds in shock-compressed hydrocarbons: Dissociation, species separation, and nucleation
作者:Bo Chen, Qiyu Zeng, Xiaoxiang Yu, Jiahao Chen, Shen Zhang, Dongdong Kang, Jiayu Dai · 发表于:Matter and Radiation at Extremes · 年份:2025 · DOI:10.1063/5.0273729 · 被引用次数:4 · 研究领域:High-pressure geophysics and materials、Astro and Planetary Science、Fullerene Chemistry and Applications
The accumulation and circulation of carbon and hydrogen contribute to the chemical evolution of ice giant planets. Species separation and diamond precipitation have been reported in carbon–hydrogen systems and have been verified by static and shock compression experiments. Nevertheless, the dynamic formation processes underlying these phenomena remain insufficiently understood. In combination with a deep learning model, we demonstrate that diamonds form through a three-step process involving dissociation, species separation, and nucleation processes. Under shock conditions of 125 GPa and 4590 K, hydrocarbons decompose to give hydrogen and low-molecular-weight alkanes (CH4 and C2H6), which escape from the carbon chains, resulting in C/H species separation. The remaining carbon atoms without C–H bonds accumulate and nucleate to form diamond crystals. The process of diamond growth is associated with a critical nucleus size at which the dynamic energy barrier plays a key role. These dynamic processes of diamond formation provide insight into the establishment of a model for the evolution of ice giant planets.