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Memory Kernel Coupling Theory: Obtain Time Correlation Function from Higher-order Moments

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arxiv 2407.01923 v3 pith:Q56HMZL7 submitted 2024-07-02 physics.chem-ph cond-mat.stat-mechquant-ph

classification physics.chem-phcond-mat.stat-mechquant-ph
keywords tcfskernelmemoryformalismtheoryauxiliarycorrelationcoupling
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Dynamical observables can often be described by time correlation functions (TCFs). However, efficiently calculating TCFs for complex quantum systems is a significant challenge, which generally requires solving the full dynamics of the systems. This Letter presents the memory kernel coupling theory (MKCT), a general formalism for evaluating TCFs. The MKCT builds upon Mori's memory kernel formalism for TCFs. Our theory further decomposes the memory kernel into auxiliary kernels. Rapid decay of auxiliary kernels allows us to truncate the coupled equations of motion with high accuracy. Notably, only higher-order moments are sufficient as the input for obtaining TCFs. While this formalism is general, we carry out the numerical demonstration for a typical open quantum system--the spin-boson model.

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  1. Scalable Neural Quantum State based Kernel Polynomial Method for Optical Properties from the First Principle

    physics.chem-ph 2025-06 conditional novelty 6.0 of 10

    Neural quantum states plus the kernel polynomial method yield ab initio absorption spectra for molecules up to 52 electrons, matching FCI where an exact comparison is possible.

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