Efficient Biologically Inspired Photocell Enhanced by Delocalized Quantum States
Abstract
Artificially implementing the biological light reactions responsible for the remarkably efficient photon-to-charge conversion in photosynthetic complexes represents a new direction for the future development of photovoltaic devices. Here, we develop such a paradigm and present a model photocell based on the nanoscale architecture and molecular elements of photosynthetic reaction centers. Quantum interference of photon absorption and emission induced by the dipole-dipole interaction between molecular excited states guarantees an enhanced light-to-current conversion and power generation for a wide range of electronic, thermal, and optical parameters for optimized dipolar geometries. This result opens a promising new route for designing artificial light-harvesting devices inspired by biological photosynthesis and quantum technologies.
- Publication:
-
Physical Review Letters
- Pub Date:
- December 2013
- DOI:
- arXiv:
- arXiv:1307.5093
- Bibcode:
- 2013PhRvL.111y3601C
- Keywords:
-
- 42.50.Gy;
- 78.67.-n;
- 82.39.Jn;
- 84.60.Jt;
- Effects of atomic coherence on propagation absorption and amplification of light;
- electromagnetically induced transparency and absorption;
- Optical properties of low-dimensional mesoscopic and nanoscale materials and structures;
- Charge transfer in biological systems;
- Photoelectric conversion: solar cells and arrays;
- Quantum Physics;
- Physics - Chemical Physics
- E-Print:
- 12 pages, 9 figures