arXiv · 2005.10179
Long-lived modulation of plasmonic absorption by ballistic thermal injection
Abstract
Energy and charge transfer across metal-semiconductor interfaces are the fundamental driving forces for a broad range of applications, such as computing, energy harvesting, and photodetection. However, the exact roles and physical separation of these two phenomena remains unclear, particularly in plasmonically-excited systems or cases of strong nonequilibrium. We report on a series of ultrafast plasmonic measurements that provide a direct measure of electronic distributions, both spatially and temporally, following optical excitation of a metal-semiconductor heterostructure. For the first time, we explicitly show that in cases of strong non-equilibrium, a novel energy transduction mechanism arises at the metal/semiconductor interface. We find that hot electrons in the metal contact transfer their energy to pre-existing electrons in the semiconductor, without transfer of charge. These experimental results findings are well-supported by both rigorous multilayer optical modeling and first-principle, ab initio calculations.
Explore related subjects
Keep this discovery
John A. Tomko, Evan L. Runnerstrom, Yi-Siang Wang, Joshua R. Nolen, David H. Olson, Kyle P. Kelley, Angela Cleri, Josh Nordlander, Joshua D. Caldwell, Oleg V. Prezhdo, Jon-Paul Maria, Patrick E. Hopkins. 2020-05-20. Long-lived modulation of plasmonic absorption by ballistic thermal injection. https://doi.org/10.1038/s41565-020-00794-z
Cite the original work for its findings. Save a collection to share your selection of sources.