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Renormalization of States and Quasiparticles in Many-body Downfolding

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arxiv 2411.13725 v2 pith:63ZLRA4Q submitted 2024-11-20 physics.comp-ph cond-mat.mtrl-sci

classification physics.comp-phcond-mat.mtrl-sci
keywords downfoldingeffectivemany-bodystatesdistinctenergyexcitedground
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We explore the principles of many-body Hamiltonian complexity reduction via downfolding on an effective low-dimensional representation. We present a unique measure of fidelity between the effective (reduced-rank) description and the full many-body treatment for arbitrary (i.e., ground and excited) states. When the entire problem is mapped on a system of interacting quasiparticles [npj Computational Materials 9 (1), 126, 2023], the effective Hamiltonians can faithfully reproduce the physics only when a clear energy scale separation exists between the subsystems and its environment. We also demonstrate that it is necessary to include quasiparticle renormalization at distinct energy scales, capturing the distinct interaction between subsystems and their surrounding environments. Numerical results from simple, exactly solvable models highlight the limitations and strengths of this approach, particularly for ground and low-lying excited states. This work lays the groundwork for applying dynamical downfolding techniques to problems concerned with (quantum) interfaces.

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  1. Theory of ab initio downfolding with arbitrary range electron-phonon coupling

    cond-mat.mtrl-sci 2025-01 conditional novelty 7.0 of 10

    A first-principles downfolding framework that includes short- and long-range electron-phonon coupling predicts large phonon screening of electron interactions, including an attractive nearest-neighbor interaction in GeTe.

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