Nanoscience and Nanostructures for Photovoltaics and Solar Fuels
Top Cited Papers
- 2 July 2010
- journal article
- review article
- Published by American Chemical Society (ACS) in Nano Letters
- Vol. 10 (8) , 2735-2741
- https://doi.org/10.1021/nl102122x
Abstract
Quantum confinement of electronic particles (negative electrons and positive holes) in nanocrystals produces unique optical and electronic properties that have the potential to enhance the power conversion efficiency of solar cells for photovoltaic and solar fuels production at lower cost. These approaches and applications are labeled third generation solar photon conversion. Prominent among these unique properties is the efficient formation of more than one electron−hole pair (called excitons in nanocrystals) from a single absorbed photon. In isolated nanocrystals that have three-dimensional confinement of charge carriers (quantum dots) or two-dimensional confinement (quantum wires and rods) this process is termed multiple exciton generation. This Perspective presents a summary of our present understanding of the science of optoelectronic properties of nanocrystals and a prognosis for and review of the technological status of nanocrystals and nanostructures for third generation photovoltaic cells and solar fuels production.Keywords
This publication has 62 references indexed in Scilit:
- Solar cell efficiency tables (Version 34)Progress In Photovoltaics, 2009
- Next Generation PhotovoltaicsPublished by Taylor & Francis ,2003
- Characteristics of impact ionization rates in direct and indirect gap semiconductorsJournal of Applied Physics, 1999
- Solar cell efficiency and carrier multiplication in Si1−xGex alloysJournal of Applied Physics, 1998
- Impact ionization model for full band Monte Carlo simulation in GaAsJournal of Applied Physics, 1996
- Thresholds of impact ionization in semiconductorsJournal of Applied Physics, 1992
- Efficiency of hot-carrier solar energy convertersJournal of Applied Physics, 1982
- Photoelectrochemistry: Applications to Solar Energy ConversionAnnual Review of Physical Chemistry, 1978
- Quantum efficiency of the internal photoelectric effect in silicon and germaniumJournal of Applied Physics, 1976
- Detailed Balance Limit of Efficiency of p-n Junction Solar CellsJournal of Applied Physics, 1961