Thermal conductance of single-molecule junctions.
basic_science · Level V
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- Record sourced from PubMed, PMID 31315129.
- Also identified by DOI 10.1038/s41586-019-1420-z.
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Abstract
Single-molecule junctions have been extensively used to probe properties as diverse as electrical conduction<sup>1-3</sup>, light emission<sup>4</sup>, thermoelectric energy conversion<sup>5,6</sup>, quantum interference<sup>7,8</sup>, heat dissipation<sup>9,10</sup> and electronic noise<sup>11</sup> at atomic and molecular scales. However, a key quantity of current interest-the thermal conductance of single-molecule junctions-has not yet been directly experimentally determined, owing to the challenge of detecting minute heat currents at the picowatt level. Here we show that picowatt-resolution scanning probes previously developed to study the thermal conductance of single-metal-atom junctions<sup>12</sup>, when used in conjunction with a time-averaging measurement scheme to increase the signal-to-noise ratio, also allow quantification of the much lower thermal conductance of single-molecule junctions. Our experiments on prototypical Au-alkanedithiol-Au junctions containing two to ten carbon atoms confirm that thermal conductance is to a first approximation independent of molecular length, consistent with detailed ab initio simulations. We anticipate that our approach will enable systematic exploration of thermal transport in many other one-dimensional systems, such as short molecules and polymer chains, for which computational predictions of thermal conductance<sup>13-16</sup> have remained experimentally inaccessible.