Publication | Closed Access
Quantum-Dot-Sensitized Solar Cells: Understanding Linker Molecules through Theory and Experiment
43
Citations
29
References
2013
Year
EngineeringOrganic Solar CellPhoto-electrochemical CellPlasmon-enhanced PhotovoltaicsChemistryPhotovoltaicsUnderstanding Linker MoleculesQuantum DotsCharge SeparationBiophysicsQuantum SciencePhysicsPhotochemistryQuantum ChemistryLinker MoleculesOrganic Charge-transfer CompoundNatural SciencesApplied PhysicsDensity-functional TheorySolar CellsAttached Qds
We have investigated the role of linker molecules in quantum-dot-sensitized solar cells (QDSSCs) using density-functional theory (DFT) and experiments. Linkers not only govern the number of attached QDs but also influence charge separation, recombination, and transport. Understanding their behavior is therefore not straightforward. DFT calculations show that mercaptopropionic acid (MPA) and cysteine (Cys) exhibit characteristic binding configurations on TiO(2) surfaces. This information is used to optimize the cell assembly process, yielding Cys-based cells that significantly outperform MPA cells, and reach power conversion efficiencies (PCE) as high as 2.7% under AM 1.5 illumination. Importantly, the structural information from theory also helps understand the cause for this improved performance.
| Year | Citations | |
|---|---|---|
Page 1
Page 1