Practical Roadmap and Limits to Nanostructured Photovoltaics
Open Access
- 7 November 2011
- journal article
- research article
- Published by Wiley in Advanced Materials
- Vol. 23 (48) , 5712-5727
- https://doi.org/10.1002/adma.201103404
Abstract
The significant research interest in the engineering of photovoltaic (PV) structures at the nanoscale is directed toward enabling reductions in PV module fabrication and installation costs as well as improving cell power conversion efficiency (PCE). With the emergence of a multitude of nanostructured photovoltaic (nano‐PV) device architectures, the question has arisen of where both the practical and the fundamental limits of performance reside in these new systems. Here, the former is addressed a posteriori. The specific challenges associated with improving the electrical power conversion efficiency of various nano‐PV technologies are discussed and several approaches to reduce their thermal losses beyond the single bandgap limit are reviewed. Critical considerations related to the module lifetime and cost that are unique to nano‐PV architectures are also addressed. The analysis suggests that a practical single‐junction laboratory power conversion efficiency limit of 17% and a two‐cell tandem power conversion efficiency limit of 24% are possible for nano‐PVs, which, when combined with operating lifetimes of 10 to 15 years, could position them as a transformational technology for solar energy markets.Keywords
This publication has 154 references indexed in Scilit:
- Improved Current Extraction from ZnO/PbS Quantum Dot Heterojunction Photovoltaics Using a MoO3 Interfacial LayerNano Letters, 2011
- High-Performance Solid-State Organic Dye Sensitized Solar Cells with P3HT as Hole TransporterThe Journal of Physical Chemistry C, 2011
- Intermediate Layers in Tandem Organic Solar CellsGreen, 2011
- Porphyrin‐Tape/C60 Organic Photodetectors with 6.5% External Quantum Efficiency in the Near InfraredAdvanced Materials, 2010
- The Effect of Nanoparticle Shape on the Photocarrier Dynamics and Photovoltaic Device Performance of Poly(3‐hexylthiophene):CdSe Nanoparticle Bulk Heterojunction Solar CellsAdvanced Functional Materials, 2010
- Life cycle analysis of organic photovoltaic technologiesProgress In Photovoltaics, 2010
- Organic Photovoltaics Using Tetraphenylbenzoporphyrin Complexes as Donor LayersAdvanced Materials, 2009
- Thiols Passivate Recombination Centers in Colloidal Quantum Dots Leading to Enhanced Photovoltaic Device EfficiencyACS Nano, 2008
- Evaluating the limits of solar photovoltaics (PV) in traditional electric power systemsEnergy Policy, 2006
- Issues in thin film PV manufacturing cost reductionSolar Energy Materials and Solar Cells, 1999