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Bridging constrained random-phase approximation and linear response theory for computing Hubbard parameters

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arxiv 2505.03698 v2 pith:KCQSR2B3 submitted 2025-05-06 cond-mat.str-el

classification cond-mat.str-el
keywords crpatheoryresponsevaluesapproximationconstraineddifferenceslinear
verification ladder T0 review T1 audit T2 compute T3 formal
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The predictive accuracy of popular extensions to density-functional theory (DFT) such as DFT+U and DFT plus dynamical mean-field theory (DFT+DMFT) hinges on using realistic values for the screened Coulomb interaction U. Here, we present a systematic comparison of the two most widely used approaches to compute this parameter, i.e. linear response theory (LRT) and the constrained random-phase approximation (cRPA), using a unified framework based on the use of maximally localized Wannier functions. We show that the U in LRT and cRPA can differ as much as 30%. We demonstrate that this discrepancy arises from two main differences: neglecting the response of the exchange-correlation potential in cRPA and additional excitation channels in LRT. By taking these differences into account, we can achieve near perfect agreement between the two techniques. Moreover, we show that in cases with strong hybridization between interacting and screening subspaces, the application of cRPA becomes ambiguous and can lead to unrealistically small U values, while LRT remains well-behaved. Our work formally connects both methods, sheds light on their strengths and limitations, and emphasizes the importance of using a consistent set of Wannier orbitals to ensure transferability of U values between different implementations.

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Cited by 4 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Validity of DFT+U band gaps in all its known functional forms

    cond-mat.str-el 2026-04 unverdicted novelty 7.0 of 10

    DFT+U single-particle eigenvalue gaps match fundamental gaps from total energy differences for perfect crystals but fail for defects and molecules, proven analytically for every published functional variant.

  2. Development of ab initio Hubbard parameter calculation schemes in the k-point sampling real-time TDDFT program in CP2K

    cond-mat.str-el 2026-04 unverdicted novelty 6.0 of 10

    New energy-dependent ab initio Hubbard parameter scheme implemented in k-point RT-TDDFT within CP2K by extending the minimum-tracking linear-response method to include xc-functional effects.

  3. Exact downfolding and its perturbative approximation

    cond-mat.str-el 2025-07 unverdicted novelty 6.0 of 10

    Derives an exact downfolded effective model by integrating out the rest space, states conditions for perturbative truncation, and formally recovers cRPA with corrections.

  4. Physics-informed Machine Learning Prediction of Hubbard Interaction Parameters

    cond-mat.mtrl-sci 2026-07 conditional novelty 5.0 of 10

    Ensemble ML plus brute-force regression formulas predict cRPA-derived Ueff, V, and J for transition-metal oxides from electronic, structural, and elemental descriptors, with reported RMSEs of 0.148, 0.062, and 0.007 eV.

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