Abstract
Localized surface plasmon resonance (LSPR) holds great promise for the next generation of fast nanoscale optoelectronic devices, as silicon-based electronic devices approach fundamental speed and scaling limitations. However, in order to fully exploit the potential of plasmonics, devices and material systems capable of actively controlling and manipulating plasmonic response are essential. Here, we demonstrate active control of the electric field distribution of a microantenna by coupling LSPRs to a photosynthetic protein with outstanding optoelectronic properties and a long-range and efficient exciton transfer ability. The hybrid biosolid state active platform is able to tune and modulate the optical activity of a microplasmonic antenna via the interaction of the bioactive material with plasmon oscillations occurring in the antennae. In addition, we demonstrate that the effect of the coupling can be further enhanced and controlled by an external potential applied to the microantenna photosynthetic hybrid system. The control of the microantenna electric field distribution by an optical active protein opens the path for future fast optical data processing.
Original language | English |
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Pages (from-to) | 13668-13676 |
Number of pages | 9 |
Journal | ACS Applied Nano Materials |
Volume | 6 |
Issue number | 14 |
DOIs | |
State | Published - 28 Jul 2023 |
Keywords
- LSPR
- active materials
- bio-optoelectronic hybrids
- nanotechnology
- photosystem
- plasmonic microantenna
All Science Journal Classification (ASJC) codes
- General Materials Science