Too hot for photon-assisted transport: Hot-electrons dominate conductance enhancement in illuminated single-molecule junctions
Fung E-D, Adak O, Lovat G, Scarabelli D, Venkataraman L. 2017. Too hot for photon-assisted transport: Hot-electrons dominate conductance enhancement in illuminated single-molecule junctions. Nano Letters. 17(2), 1255–1261.
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Journal Article
| Published
| English
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Author
Fung, E-Dean;
Adak, Olgun;
Lovat, Giacomo;
Scarabelli, Diego;
Venkataraman, LathaISTA
Abstract
We investigate light-induced conductance enhancement in single-molecule junctions via photon-assisted transport and hot-electron transport. Using 4,4′-bipyridine bound to Au electrodes as a prototypical single-molecule junction, we report a 20–40% enhancement in conductance under illumination with 980 nm wavelength radiation. We probe the effects of subtle changes in the transmission function on light-enhanced current and show that discrete variations in the binding geometry result in a 10% change in enhancement. Importantly, we prove theoretically that the steady-state behavior of photon-assisted transport and hot-electron transport is identical but that hot-electron transport is the dominant mechanism for optically induced conductance enhancement in single-molecule junctions when the wavelength used is absorbed by the electrodes and the hot-electron relaxation time is long. We confirm this experimentally by performing polarization-dependent conductance measurements of illuminated 4,4′-bipyridine junctions. Finally, we perform lock-in type measurements of optical current and conclude that currents due to laser-induced thermal expansion mask optical currents. This work provides a robust experimental framework for studying mechanisms of light-enhanced transport in single-molecule junctions and offers tools for tuning the performance of organic optoelectronic devices by analyzing detailed transport properties of the molecules involved.
Publishing Year
Date Published
2017-01-23
Journal Title
Nano Letters
Publisher
American Chemical Society
Volume
17
Issue
2
Page
1255-1261
ISSN
eISSN
IST-REx-ID
Cite this
Fung E-D, Adak O, Lovat G, Scarabelli D, Venkataraman L. Too hot for photon-assisted transport: Hot-electrons dominate conductance enhancement in illuminated single-molecule junctions. Nano Letters. 2017;17(2):1255-1261. doi:10.1021/acs.nanolett.6b05091
Fung, E.-D., Adak, O., Lovat, G., Scarabelli, D., & Venkataraman, L. (2017). Too hot for photon-assisted transport: Hot-electrons dominate conductance enhancement in illuminated single-molecule junctions. Nano Letters. American Chemical Society. https://doi.org/10.1021/acs.nanolett.6b05091
Fung, E-Dean, Olgun Adak, Giacomo Lovat, Diego Scarabelli, and Latha Venkataraman. “Too Hot for Photon-Assisted Transport: Hot-Electrons Dominate Conductance Enhancement in Illuminated Single-Molecule Junctions.” Nano Letters. American Chemical Society, 2017. https://doi.org/10.1021/acs.nanolett.6b05091.
E.-D. Fung, O. Adak, G. Lovat, D. Scarabelli, and L. Venkataraman, “Too hot for photon-assisted transport: Hot-electrons dominate conductance enhancement in illuminated single-molecule junctions,” Nano Letters, vol. 17, no. 2. American Chemical Society, pp. 1255–1261, 2017.
Fung E-D, Adak O, Lovat G, Scarabelli D, Venkataraman L. 2017. Too hot for photon-assisted transport: Hot-electrons dominate conductance enhancement in illuminated single-molecule junctions. Nano Letters. 17(2), 1255–1261.
Fung, E. Dean, et al. “Too Hot for Photon-Assisted Transport: Hot-Electrons Dominate Conductance Enhancement in Illuminated Single-Molecule Junctions.” Nano Letters, vol. 17, no. 2, American Chemical Society, 2017, pp. 1255–61, doi:10.1021/acs.nanolett.6b05091.
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