Intermediate Band Solar Cell with Extreme Broadband Spectrum Quantum Efficiency
Alejandro Datas, Esther López, I. Ramiro, E. Antolín, Antonio Martı́, A. Ĺuque, Ryo Tamaki, Yasushi Shoji, Tomah Sogabe, Yoshitaka Okada
Abstract
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Alejandro Datas, Esther López, I. Ramiro, E. Antolín, Antonio Martı́, A. Ĺuque, Ryo Tamaki, Yasushi Shoji, Tomah Sogabe, Yoshitaka Okada
Abstract
Open-access reader
We report, for the first time, about an intermediate band solar cell implemented with InAs/AlGaAs quantum dots whose photoresponse expands from 250 to ∼6000 nm. To our knowledge, this is the broadest quantum efficiency reported to date for a solar cell and demonstrates that the intermediate band solar cell is capable of producing photocurrent when illuminated with photons whose energy equals the energy of the lowest band gap. We show experimental evidence indicating that this result is in agreement with the theory of the intermediate band solar cell, according to which the generation recombination between the intermediate band and the valence band makes this photocurrent detectable.
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We report, for the first time, about an intermediate band solar cell implemented with InAs/AlGaAs quantum dots whose photoresponse expands from 250 to ∼6000 nm. To our knowledge, this is the broadest quantum efficiency reported to date for a solar cell and demonstrates that the intermediate band solar cell is capable of producing photocurrent when illuminated with photons whose energy equals the energy of the lowest band gap. We show experimental evidence indicating that this result is in agreement with the theory of the intermediate band solar cell, according to which the generation recombination between the intermediate band and the valence band makes this photocurrent detectable.
Key concepts: Multiple exciton generation, Photocurrent, Solar cell, Physics, Band gap, Theory of solar cells, Optoelectronics, Solar cell efficiency