Photovoltaic Performance of Ultrasmall PbSe Quantum Dots
- 22 September 2011
- journal article
- research article
- Published by American Chemical Society (ACS) in ACS Nano
- Vol. 5 (10), 8140-8147
- https://doi.org/10.1021/nn202786g
Abstract
We investigated the effect of PbSe quantum dot size on the performance of Schottky solar cells made in an ITO/PEDOT/PbSe/aluminum structure, varying the PbSe nanoparticle diameter from 1 to 3 nm. In this highly confined regime, we find that the larger particle bandgap can lead to higher open-circuit voltages (∼0.6 V), and thus an increase in overall efficiency compared to previously reported devices of this structure. To carry out this study, we modified existing synthesis methods to obtain ultrasmall PbSe nanocrystals with diameters as small as 1 nm, where the nanocrystal size is controlled by adjusting the growth temperature. As expected, we find that photocurrent decreases with size due to reduced absorption and increased recombination, but we also find that the open-circuit voltage begins to decrease for particles with diameters smaller than 2 nm, most likely due to reduced collection efficiency. Owing to this effect, we find peak performance for devices made with PbSe dots with a first exciton energy of ∼1.6 eV (2.3 nm diameter), with a typical efficiency of 3.5%, and a champion device efficiency of 4.57%. Comparing the external quantum efficiency of our devices to an optical model reveals that the photocurrent is also strongly affected by the coherent interference in the thin film due to Fabry-Pérot cavity modes within the PbSe layer. Our results demonstrate that even in this simple device architecture, fine-tuning of the nanoparticle size can lead to substantial improvements in efficiency.Keywords
This publication has 38 references indexed in Scilit:
- Infrared Colloidal Quantum Dots for Photovoltaics: Fundamentals and Recent ProgressAdvanced Materials, 2010
- Depleted-Heterojunction Colloidal Quantum Dot Solar CellsACS Nano, 2010
- Quantum Dot Photovoltaics in the Extreme Quantum Confinement Regime: The Surface-Chemical Origins of Exceptional Air- and Light-StabilityACS Nano, 2010
- Hybrid Photovoltaics Based on Semiconductor Nanocrystals and Amorphous SiliconNano Letters, 2009
- Schottky Solar Cells Based on Colloidal Nanocrystal FilmsNano Letters, 2008
- Schottky-quantum dot photovoltaics for efficient infrared power conversionApplied Physics Letters, 2008
- Structural, Optical, and Electrical Properties of Self-Assembled Films of PbSe Nanocrystals Treated with 1,2-EthanedithiolACS Nano, 2008
- Colloidal synthesis of nanocrystals and nanocrystal superlatticesIBM Journal of Research and Development, 2001
- Lead Salt Quantum Dots: the Limit of Strong Quantum ConfinementAccounts of Chemical Research, 2000
- Electronic structure and optical properties of PbS and PbSe quantum dotsJournal of the Optical Society of America B, 1997