Scinovex
article Open AccessTop 1% cited

A polymer tandem solar cell with 10.6% power conversion efficiency

Nature Communications · 2013 · Vol. 4(1) · pp. 1446–1446
Jingbi YouLetian DouKen YoshimuraTakehito KatoKenichiro OhyaT. MoriartyKeith EmeryChun‐Chao ChenJing GaoGang LiYang Yang

Abstract

An effective way to improve polymer solar cell efficiency is to use a tandem structure, as a broader part of the spectrum of solar radiation is used and the thermalization loss of photon energy is minimized. In the past, the lack of high-performance low-bandgap polymers was the major limiting factor for achieving high-performance tandem solar cell. Here we report the development of a high-performance low bandgap polymer (bandgap <1.4 eV), poly[2,7-(5,5-bis-(3,7-dimethyloctyl)-5H-dithieno[3,2-b:2',3'-d]pyran)-alt-4,7-(5,6-difluoro-2,1,3-benzothia diazole)] with a bandgap of 1.38 eV, high mobility, deep highest occupied molecular orbital. As a result, a single-junction device shows high external quantum efficiency of >60% and spectral response that extends to 900 nm, with a power conversion efficiency of 7.9%. The polymer enables a solution processed tandem solar cell with certified 10.6% power conversion efficiency under standard reporting conditions (25 °C, 1,000 Wm(-2), IEC 60904-3 global), which is the first certified polymer solar cell efficiency over 10%.

Organic Electronics and PhotovoltaicsPerovskite Materials and ApplicationsConducting polymers and applicationsTandemQuantum efficiencyEnergy conversion efficiencyBand gapPolymerOptoelectronicsMaterials sciencePolymer solar cellSolar cellSolar cell efficiency

Funding

  • U.S. Department of Energy
  • Air Force Office of Scientific Research
  • National Renewable Energy Laboratory
Citations
2,769
FWCI
451.31
field-weighted impact
References
56
Percentile
100%
vs. same field & year
Citations per year
Cited by
Citation Network

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