Probing the Dynamics and Configurations of Single-Molecule Junctions via Seebeck Coefficient Spectroscopy.
basic_science · Level V
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- Record sourced from PubMed, PMID 41604691.
- Also identified by DOI 10.1021/acs.nanolett.5c05531.
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Abstract
Single-molecule junctions exhibit dynamic structural configurations that strongly influence their electronic and thermoelectric properties. Here, we combine conductance (<i>G</i>) and Seebeck coefficient (<i>S</i>) measurements using the novel AC-based scanning tunneling microscope break-junction technique to probe the real-time evolution of oligo(phenylene ethynylene) molecular junctions. We show that most junctions undergo configuration changes that lead to notable changes in <i>S</i>, while <i>G</i> remains nearly constant. Density functional theory and quantum transport simulations link these observations to variations in contact geometry and charge transfer at the molecule-electrode interface. Our results demonstrate that simultaneous <i>G</i> and <i>S</i> measurements enable direct access to the dynamic reconfiguration of single-molecule junctions and offer design insights for thermoelectric molecular devices and new routes for increasing single-molecule junction stability.