Single-electron transport in a molecular Hubbard dimer
arXiv:2105.00487 · doi:10.1039/D1SC03050G
Abstract
Many-body electron interactions are at the heart of chemistry and solid-state physics. Understanding these interactions is crucial for the development of molecular-scale quantum and nanoelectronic devices. Here, we investigate single-electron tunneling through an edge-fused porphyrin oligomer and demonstrate that its transport behavior is well described by the Hubbard dimer model. This allows us to study the role of electron-electron interactions in the transport setting. In particular, we empirically determine the molecule's on-site and inter-site electron-electron repulsion energies, which are in good agreement with density functional calculations, and establish the molecular electronic structure within various charge states. The gate-dependent rectification behavior is used to further confirm the selection rules and state degeneracies resulting from the Hubbard model. We therefore demonstrate that current flow through the molecule is governed by a non-trivial set of vibrationally coupled electronic transitions between various many-body states, and experimentally confirm the importance of electron-electron interactions in single-molecule devices.
19 pages, 5 figures
References in corpus (10)
- Resonant Electron Transport in Single-Molecule Junctions: Vibrational Excitation, Rectification, Negative Differential Resistance and Local Cooling
- Electron counting in quantum dots
- Many-body theory of electronic transport in single-molecule heterojunctions
- A benzene interference single-electron transistor
- Pauli spin blockade in weakly coupled quantum dots
- Vibrational Excitations in Weakly Coupled Single-Molecule Junctions: A Computational Analysis
- Measuring the degeneracy of discrete energy levels using a GaAs/AlGaAs quantum dot
- Ground-state spin blockade in a single-molecule junction
- Electroluminescence spectra in weakly coupled single-molecule junctions
- Spin excitations in an all-organic double quantum dot molecule