
Andreas Wacker
Professor

Time dependent study of multiple exciton generation in nanocrystal quantum dots
Author
Summary, in English
We study the exciton dynamics in an optically excited nanocrystal quantum dot. Multiple exciton formation is more efficient in nanocrystal quantum dots compared to bulk semiconductors due to enhanced Coulomb interactions and the absence of conservation of momentum. The formation of multiple excitons is dependent on different excitation parameters and the dissipation. We study this process within a Lindblad quantum rate equation using the full many-particle states. We optically excite the system by creating a single high energy exciton ESX in resonance to a double exciton EDX. With Coulomb electron-electron interaction, the population can be transferred from the single exciton to the double exciton state by impact ionisation (inverse Auger process). The ratio between the recombination processes and the absorbed photons provide the yield of the structure. We observe a quantum yield of comparable value to experiment assuming typical experimental conditions for a 4 nm PbS quantum dot.
Department/s
- NanoLund: Center for Nanoscience
- Mathematical Physics
Publishing year
2016-04-12
Language
English
Publication/Series
Journal of Physics: Conference Series
Volume
696
Issue
1
Document type
Journal article
Publisher
IOP Publishing
Topic
- Subatomic Physics
Status
Published
ISBN/ISSN/Other
- ISSN: 1742-6596