Title :
Improved transport with 1,2-ethanedithiol treatment in the preparation of quantum-dot-nanowire solar cells
Author :
Nadarajah, Athavan ; Könenkamp, Rolf
Author_Institution :
Dept. of Phys., Portland State Univ., Portland, OR, USA
Abstract :
We describe the design, fabrication, and characterization of heterojunction solar cells consisting of CdSe quantum dot films sandwiched between a hole conducting polymer layer and n-type ZnO nanowires. We also present a detailed analysis of the quantum dot layer deposition processes, solution-phase ligand exchange of this quantum dot layer, the conformality of this layer on deeply nanostructured samples, and the effect of a surfactant-aided thermal anneal process. Annealing creates a structural conversion of the quantum dot layers into an extremely thin continuous polycrystalline film with typical grain diameters of 30-50 nm. This transition is accompanied by a loss of quantum confinement and a significant improvement of the charge transport in the layer. The optimized annealing and deposition processes result in solar cells with an open-circuit voltage up to 0.4 V, a short circuit current of ~10 mA/cm2, an external quantum efficiency of 65%, and an energy conversion efficiency above 2%.
Keywords :
II-VI semiconductors; cadmium compounds; nanowires; semiconductor quantum dots; solar cells; wide band gap semiconductors; zinc compounds; 1,2-ethanedithiol treatment; CdSe-ZnO; heterojunction solar cells; hole conducting polymer layer; polycrystalline film; quantum confinement; quantum dot films; quantum dot layer deposition processes; quantum dot layers; quantum-dot-nanowire solar cells; size 30 nm to 50 nm; solution-phase ligand exchange; surfactant-aided thermal anneal process; voltage 0.4 V; Annealing; Films; Photovoltaic cells; Quantum dots; Scanning electron microscopy; Substrates; Zinc oxide;
Conference_Titel :
Nanotechnology (IEEE-NANO), 2011 11th IEEE Conference on
Conference_Location :
Portland, OR
Print_ISBN :
978-1-4577-1514-3
Electronic_ISBN :
1944-9399
DOI :
10.1109/NANO.2011.6144442