Photoexcited carriers transfer properties in a doped double quantum dots photocell
arXiv:2402.00895 · doi:10.1140/epjp/s13360-023-04660-4
Abstract
Identifying the behavior of photoexcited carriers is one method for empirically boosting their transfer efficiencies in doped double quantum dots (DQDs) photocells. The photoexcited carriers transfer qualities were assessed in this study by the output current, power, and output efficiency in the multi-photon absorption process for a doped DQDs photocell, and an optimization technique is theoretically obtained for this proposed photocell model. The results show that some structure parameters caused by doping, such as gaps, incoherent tunneling coupling, and symmetry of structure between two vertically aligned QDs, can remarkably control the photoexcited carriers transfer properties, and that slightly increasing the ambient temperature around room temperature is beneficial to the transfer performance in this doping DQDs photocell model. Thus, our scheme proves a way to optimized strategies for DQDs photocell.
10 pages, 6 figures
References in corpus (7)
- Quantum Photovoltaic Effect in Double Quantum Dots
- Enhanced quantum yields and efficiency in a quantum dot photocell modeled by a multi-level system
- High quantum yields generated by a multi-band quantum dot photocell
- Manipulative Properties of the Asymmetry Double Quantum Dots via Laser and Gate Voltage
- Photovoltaic performances in a cavity-coupled double quantum dots photocell
- Photosynthetic properties assisted by the quantum entanglement in two adjacent pigment molecules
- Differentiation of correlated fluctuations in site energy on excitation energy transfer in photosynthetic light-harvesting complexes