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非平衡量子核动力学的原子模拟

Atomistic simulations of out-of-equilibrium quantum nuclear dynamics.

作者信息

Libbi Francesco, Johansson Anders, Monacelli Lorenzo, Kozinsky Boris

机构信息

John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA 02138 USA.

Department of Physics, Sapienza University of Rome, Piazzale Aldo Moro 5, 00185 Rome, Italy.

出版信息

NPJ Comput Mater. 2025;11(1):102. doi: 10.1038/s41524-025-01588-4. Epub 2025 Apr 16.

Abstract

The rapid advancements in ultrafast laser technology have paved the way for pumping and probing the out-of-equilibrium dynamics of nuclei in crystals. However, interpreting these experiments is extremely challenging due to the complex nonlinear responses in systems where lattice excitations interact, particularly in crystals composed of light atoms or at low temperatures where the quantum nature of ions becomes significant. In this work, we address the nonequilibrium quantum ionic dynamics from first principles. Our approach is general and can be applied to simulate any crystal, in combination with a first-principles treatment of electrons or external machine-learning potentials. It is implemented by leveraging the nonequilibrium time-dependent self-consistent harmonic approximation (TD-SCHA), with a stable, energy-conserving, correlated stochastic integration scheme that achieves an accuracy of . We benchmark the method with both a simple one-dimensional model to test its accuracy and a realistic 40-atom cell of SrTiO under THz laser pump, paving the way for simulations of ultrafast THz-Xray pump-probe spectroscopy like those performed in synchrotron facilities.

摘要

超快激光技术的迅速发展为泵浦和探测晶体中原子核的非平衡动力学铺平了道路。然而,由于晶格激发相互作用的系统中存在复杂的非线性响应,特别是在由轻原子组成的晶体中或在低温下离子的量子性质变得显著时,解释这些实验极具挑战性。在这项工作中,我们从第一原理出发研究非平衡量子离子动力学。我们的方法具有通用性,可与电子的第一原理处理或外部机器学习势相结合,应用于模拟任何晶体。它是通过利用非平衡含时自洽谐波近似(TD-SCHA)实现的,采用一种稳定、能量守恒的相关随机积分方案,其精度达到 。我们用一个简单的一维模型测试该方法的精度,并在太赫兹激光泵浦下对一个由40个原子组成的实际SrTiO晶胞进行基准测试,为同步加速器设施中进行的超快太赫兹 - X射线泵浦 - 探测光谱模拟铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce8e/12003180/e4f07eaad080/41524_2025_1588_Fig1_HTML.jpg

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