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Improved molecular conductance predictions using wavefunction-in-DFT quantum embedding

Jelenfi, Dávid Péter and Mester, Dávid and Tajti, Attila and Szalay, Péter (2026) Improved molecular conductance predictions using wavefunction-in-DFT quantum embedding. JOURNAL OF CHEMICAL PHYSICS, 164 (5). No. 054105. ISSN 0021-9606

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Abstract

A novel electronic structure methodology to describe electron transport in single-molecule junctions (SMJs) within non-equilibrium Green’s function theory is presented. The approach is based on a formally exact, projection-based quantum embedding technique that combines correlated many-electron wavefunction models for the molecular region with a density functional theory (DFT) description of the metallic electrodes. This is achieved by constructing a specialized Hamiltonian for the molecular domain, leveraging Dyson orbitals corresponding to the ionized and electron-attached states of the embedded molecule. The effectiveness of this wavefunction-in-DFT embedding scheme is demonstrated through transport calculations for SMJs containing benzene-1,4-diamine and its substituted derivatives, employing Hartree–Fock, SOS-ADC(2), and CCSD methods for the molecular subsystem. The results show a marked improvement in the predicted zero-bias conductance compared to conventional DFT-based transport modeling employing the PBE functional. The proposed methodology provides a systematic way to select the most suitable electronic structure methods for the different parts of the system, maintaining a balance between accuracy and computational cost, while ensuring a proper description of electronic correlation within the molecule, which may notably impact electron transport in certain systems.

Item Type: Article
Additional Information: This work has been supported by the National Research, Innovation and Development Fund (NKFIA) of Hungary (Grant No. 142634). D.P.J. acknowledges the support by the EKOP-24 University Excellence Scholarship Programme of the Ministry for Culture and Innovation from the source of the National Research, Development and Innovation Fund. D.M. acknowledges the Janos Bolyai Research Scholarship of the Hungarian Academy of Sciences. The authors thank Dr. Bence Hegely, Professor Mihaly Kallay, and Dr. Laszlo Oroszlany for useful discussions. The authors appreciate the computational resources provided by the ELTE IIG High-Performance Computing facility.
Subjects: Q Science / természettudomány > QC Physics / fizika
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 10 Sep 2026 08:04
Last Modified: 10 Sep 2026 08:04
URI: https://real.mtak.hu/id/eprint/246006

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