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量子计算算法在分子中精确激光驱动电子动力学。

Quantum-Compute Algorithm for Exact Laser-Driven Electron Dynamics in Molecules.

机构信息

Helmholtz-Zentrum Berlin für Materialien und Energie GmbH, Hahn-Meitner-Platz 1, 14109Berlin, Germany.

Institute of Chemistry and Biochemistry, Freie Universität Berlin, Arnimallee 22, 14195Berlin, Germany.

出版信息

J Chem Theory Comput. 2022 Dec 13;18(12):7082-7092. doi: 10.1021/acs.jctc.2c00878. Epub 2022 Nov 18.

Abstract

In this work, we investigate the capability of known quantum computing algorithms for fault-tolerant quantum computing to simulate the laser-driven electron dynamics of excitation and ionization processes in small molecules such as lithium hydride, which can be benchmarked against the most accurate time-dependent full configuration interaction (TD-FCI) calculations. The conventional TD-FCI wave packet propagation is reproduced using the Jordan-Wigner transformation for wave function and operators and the Trotter product formula for expressing the propagator. In addition, the time-dependent dipole moment, as an example of a time-dependent expectation value, is calculated using the Hadamard test. To include non-Hermitian operators in the ionization dynamics, a similar approach to the quantum imaginary time evolution (QITE) algorithm is employed to translate the propagator, including a complex absorption potential, into quantum gates. The computations are executed on a quantum computer simulator. By construction, all quantum computer algorithms, except for the QITE algorithm used only for ionization but not for excitation dynamics, would scale polynomially on a quantum computer with fully entangled qubits. In contrast, TD-FCI scales exponentially. Hence, quantum computation holds promises for substantial progress in the understanding of electron dynamics of excitation processes in increasingly large molecular systems, as has already been witnessed in electronic structure theory.

摘要

在这项工作中,我们研究了已知的量子计算算法在容错量子计算中的能力,以模拟小分子(如氢化锂)中的激发和电离过程的激光驱动电子动力学,这些过程可以与最准确的时间相关全组态相互作用(TD-FCI)计算进行基准测试。使用 Jordan-Wigner 变换对波函数和算符进行转换,并使用 Trotter 乘积公式对传播子进行表示,从而再现传统的 TD-FCI 波包传播。此外,通过 Hadamard 测试计算了作为时间相关期望值的示例的时间相关偶极矩。为了在电离动力学中包含非厄米算符,采用类似于量子虚时演化(QITE)算法的方法将包括复吸收势的传播子转换为量子门。计算在量子计算机模拟器上执行。从构造上看,除了仅用于电离而不适用于激发动力学的 QITE 算法之外,所有量子计算机算法在具有完全纠缠量子位的量子计算机上的计算都将呈多项式缩放。相比之下,TD-FCI 呈指数级增长。因此,量子计算有望在理解越来越大的分子系统中的激发过程的电子动力学方面取得重大进展,这在电子结构理论中已经得到了见证。

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