基于含时密度泛函理论的C20富勒烯内质子碰撞动力学研究

Study on Proton Collision Dynamics Inside C₂₀ Fullerene Based on Time-Dependent Density Functional Theory

  • 摘要: 利用含时密度泛函理论(TDDFT)与分子动力学(MD)非绝热耦合的方法,以质子预封装的C20富勒烯为对象,探究5-500 eV初动能的质子与C20的碰撞动力学规律。结果表明,C20基态含两种五边形碳环及四种CC键,键长对称分布保障结构稳定;质子与C20的作用可分为“笼内振动/成键”“破笼成键”“直接分离逃逸”三类,40 eV为笼体结构破坏与质子完全逃逸的临界动能。质子损失的动能与其初动能呈线性关系,低动能时(≤40 eV)动能损失率超75%,高动能时(≥45 eV)损失率从75%降至21%;电子与离子的强耦合作用驱动能量传递,且质子动能越高,从C20吸附电子能力越强,C20损失电子数从0.8增至1.9。

     

    Abstract: Using the method of non-adiabatic coupling between time-dependent density functional theory (TDDFT) and molecular dynamics (MD), taking proton-preencapsulated C₂₀ fullerene as the research object, this study explores the collision dynamics between protons with an initial kinetic energy of 5-500 eV and C₂₀. The results show that the ground state of C₂₀ contains two types of pentagonal carbon rings and four types of CC bonds, and the symmetrical distribution of bond lengths ensures structural stability. The interactions between proton and C₂₀ can be classified into three categories: “intracage vibration / bonding”, “cage-breaking bonding”, and “direct separation and escape”, with 40 eV being the critical kinetic energy for cage structure destruction and complete proton escape. The kinetic energy lost by proton has a linear relationship with the incident energy. At low incident energy (≤40 eV), the energy loss rate exceeds 75%, while at high kinetic energy (≥45 eV), the loss rate decreases from 75% to 21%. The strong coupling between electrons and ions drives energy transfer, and the higher the proton energy, the stronger its ability to adsorb electrons from C₂₀, with the number of electrons lost by C₂₀ increasing from 0.8 to 1.9. The research results fill the theoretical gap in proton dynamics inside small-sized fullerenes and provide microscopic theoretical support for the design of fullerene-based proton storage and quantum sensing materials.

     

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