Quantum Dots Improve Photovoltaic Properties of Purple Membranes under Near-Infrared Excitation
- Authors: Krivenkov V.A.1,2, Samokhvalov P.S.1, Chistyakov A.A.3, Nabiev I.1,4
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Affiliations:
- Laboratory of Nano-Bioengineering, National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
- Laboratory of Hybrid Photonic Nanomaterials, National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
- Department of Physics of Micro- and Nanosystems, National Research Nuclear University MEPhI (Moscow Engineering Physics Institute)
- Laboratoire de Recherche en Nanosciences, LRN-EA4682, Université de Reims Champagne-Ardenne
- Issue: Vol 125, No 5 (2018)
- Pages: 747-750
- Section: Nanophotonics
- URL: https://journal-vniispk.ru/0030-400X/article/view/165855
- DOI: https://doi.org/10.1134/S0030400X18110164
- ID: 165855
Cite item
Abstract
Purple membrane (PMs), in which the photosensitive protein bacteriorhodopsin (bR) naturally occurs, have photovoltaic properties and are promising for optoelectronic applications. However, PMs cannot effectively absorb light in the NIR spectral region. Semiconductor quantum dots (QDs), which have high two-photon absorption cross-sections in the NIR region, can significantly improve the light sensitivity of PMs by means of Förster resonance energy transfer (FRET) from QDs to bR inside PMs. The purpose of this study was to improve the photovoltaic properties of PMs by means of FRET from QDs to bR under NIR two-photon excitation. We made the QD-PM complexes and showed high FRET efficiency in them. Finally, we found that the current signal from the QD-PM material was higher than that in the case of PMs alone under NIR excitation. The obtained results clearly demonstrate improvement of the photovoltaic properties of PMs under NIR two-photon excitation due to the FRET from QDs to bR and show the prospect of designing new photosensitive bio-nanohybrid devices.
About the authors
V. A. Krivenkov
Laboratory of Nano-Bioengineering, National Research Nuclear University MEPhI(Moscow Engineering Physics Institute); Laboratory of Hybrid Photonic Nanomaterials, National Research Nuclear University MEPhI
(Moscow Engineering Physics Institute)
Author for correspondence.
Email: vkrivenkov@list.ru
Russian Federation, Moscow, 115409; Moscow, 115409
P. S. Samokhvalov
Laboratory of Nano-Bioengineering, National Research Nuclear University MEPhI(Moscow Engineering Physics Institute)
Email: vkrivenkov@list.ru
Russian Federation, Moscow, 115409
A. A. Chistyakov
Department of Physics of Micro- and Nanosystems, National Research Nuclear University MEPhI(Moscow Engineering Physics Institute)
Email: vkrivenkov@list.ru
Russian Federation, Moscow, 115409
I. Nabiev
Laboratory of Nano-Bioengineering, National Research Nuclear University MEPhI(Moscow Engineering Physics Institute); Laboratoire de Recherche en Nanosciences, LRN-EA4682,
Université de Reims Champagne-Ardenne
Email: vkrivenkov@list.ru
Russian Federation, Moscow, 115409; Reims, 51100
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