Scinovex
articleTop 1% cited

Lanthanide ions as spectral converters for solar cells

Physical Chemistry Chemical Physics · 2009 · Vol. 11(47) · pp. 11081–11081
B.M. van der EndeLinda AartsAndries Meijerink

Abstract

The use of lanthanide ions to convert photons to different, more useful, wavelengths is well-known from a wide range of applications (e.g. fluorescent tubes, lasers, white light LEDs). Recently, a new potential application has emerged: the use of lanthanide ions for spectral conversion in solar cells. The main energy loss in the conversion of solar energy to electricity is related to the so-called spectral mismatch: low energy photons are not absorbed by a solar cell while high energy photons are not used efficiently. To reduce the spectral mismatch losses both upconversion and downconversion are viable options. In the case of upconversion two low energy infrared photons that cannot be absorbed by the solar cell, are added up to give one high energy photon that can be absorbed. In the case of downconversion one high energy photon is split into two lower energy photons that can both be absorbed by the solar cell. The rich and unique energy level structure arising from the 4f(n) inner shell configuration of the trivalent lanthanide ions gives a variety of options for efficient up- and downconversion. In this perspective an overview will be given of recent work on photon management for solar cells. Three topics can be distinguished: (1) modelling of the potential impact of spectral conversion on the efficiency of solar cells; (2) research on up- and downconversion materials based on lanthanides; and (3) proof-of-principle experiments. Finally, an outlook will be given, including issues that need to be resolved before wide scale application of up- and downconversion materials can be anticipated.

Quantum Dots Synthesis And PropertiesLuminescence Properties of Advanced MaterialsNonlinear Optical Materials StudiesPhoton upconversionEnergy transformationPhotonLanthanideSolar cell efficiencySolar cellOptoelectronicsSolar energyEnergy conversion efficiencyIon
Citations
896
FWCI
19.05
field-weighted impact
References
122
Percentile
100%
vs. same field & year
Citations per year
Cited by
A review on ZnO: Fundamental properties and applications
Materials Today Proceedings · 2020 · 411 citations
Rare earths: jewels for functional materials of the future
New Journal of Chemistry · 2011 · 509 citations
References
Powering the planet: Chemical challenges in solar energy utilization
Proceedings of the National Academy of Sciences · 2006 · 8,164 citations
Detailed Balance Limit of Efficiency of<i>p-n</i>Junction Solar Cells
Journal of Applied Physics · 1961 · 12,706 citations
Luminescent layers for enhanced silicon solar cell performance: Up-conversion
Solar Energy Materials and Solar Cells · 2007 · 710 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Lanthanide ions as spectral converters for solar cells · Scinovex