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Examining real-time time-dependent density functional theory nonequilibrium simulations for the calculation of electronic stopping power

机译:检查实时依赖性密度泛函理论非纤细模拟,用于计算电子停止功率的计算

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摘要

In ion irradiation processes, electronic stopping power describes the energy transfer rate from the irradiating ion to the target material’s electrons. Due to the scarcity and significant uncertainties in experimental electronic stopping power data formaterials beyond simple solids, there has been growing interest in the use of first-principles theory for calculating electronic stopping power. In recent years, advances in high-performance computing have opened the door to fully first-principles nonequilibrium simulations based on real-time time-dependent density functional theory (RT-TDDFT). While it has been demonstrated that the RT-TDDFT approach is capable of predicting electronic stopping power for a wide range of condensed matter systems, there has yet to be an exhaustive examination of the physical and numerical approximations involved and their effects on the calculated stopping power. We discuss the results of such a study for crystalline silicon with protons as irradiating ions. We examine the influences of key approximations in RT-TDDFT nonequilibrium simulations on the calculated electronic stopping power, including approximations related to basis sets, finite size effects, exchange-correlation approximation, pseudopotentials, and more. Finally, we propose a simple and efficient correction scheme to account for the contribution from core-electron excitations to the stopping power, as it was found to be significant for large proton velocities.
机译:在离子照射过程中,电子停止功率将来自辐射离子的能量传递速率描述为目标材料的电子。由于实验电子停止电力数据缺口的稀缺性和显着的不确定性超出了简单的固体,因此在使用第一原理理论来计算电子停止功率的利益越来越感兴趣。近年来,高性能计算的进步已经将门打开了基于实时时间依赖性密度泛函理论(RT-TDDFT)的完全第一原理非QuiLibim模拟。虽然已经证明了RT-TDDFT方法能够预测用于各种冷凝物系统的电子停止动力,但尚未对所涉及的物理和数值近似的详尽检查及其对计算的停止功率的影响。我们讨论用质子作为照射离子的质子的结晶硅的研究结果。我们研究了在计算的电子停止功率上的RT-TDDFT非QuiLibibium模拟中的关键近似的影响,包括与基集合相关的近似,有限尺寸效应,交换相关性近似,假势等。最后,我们提出了一种简单有效的校正方案,以解释核心电子激发到停止功率的贡献,因为它被发现对于大型质子速度很大。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第12期|115134.1-115134.9|共9页
  • 作者单位

    Department of Chemistry University of North Carolina at Chapel Hill Chapel Hill North Carolina 27514 USA;

    Department of Chemistry University of North Carolina at Chapel Hill Chapel Hill North Carolina 27514 USA;

    Department of Chemistry University of North Carolina at Chapel Hill Chapel Hill North Carolina 27514 USA;

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