Breakdown voltage and linear temperature drift in a single-molecule junction
Using first-principles calculations based on density functional theory combined with the non-equilibrium Green's function approach, the transport behaviors of a single-molecule junction formed by benzenedithiol connected to gold electrodes are investigated. The breakdown voltage for the model o...
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Zusammenfassung: | Using first-principles calculations based on density functional theory
combined with the non-equilibrium Green's function approach, the transport
behaviors of a single-molecule junction formed by benzenedithiol connected to
gold electrodes are investigated. The breakdown voltage for the model of
benzenedithiol plus gold electrodes is 0.7 V, which is close to the
experimental value. A linear response between the conductance and temperature
(known as linear temperature drift) is found in the molecular device, which
indicates that it could be used to maintain the stability of molecular
circuits. Meanwhile, input and output with the same accuracies would be useful
for designing multi-level circuits, which would be used to improve the
resolution ratio in analog-to-digital converters. The present findings indicate
that benzenedithiol-based single-molecule junctions would be promising
functional units for molecular sensors. |
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DOI: | 10.48550/arxiv.2204.06695 |