Insight into Time-Resolved Photoluminescence Measurements on Thin-film Solar Cells using Numerical Simulations

By Ana Kanevce

National Renewable Energy Laboratory, Golden, CO

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Abstract

Increased efficiency in thin-film solar cells requires higher degree of understanding of the recombination mechanisms, and separating the various types of recombination involved. Time resolved photoluminescence (TRPL) measurement is a contactless and quick measurement method, and therefore one of the key metrics available to determine the minority-carrier lifetime in the absorber layer of photovoltaic devices. However, when a measurement is performed on a device, in addition to carrier lifetime, the TRPL signal is affected by multiple factors including drift, diffusion and interface recombination. Deconvolution of these factors and interpretation of results is often difficult.Numerical simulations are used to analyze carrier dynamics after a sample is illuminated with a short light pulse. Simulations can determine how material parameters such as doping and defect density at the interface and bulk, as well as experimental conditions such as wavelength, illumination intensity and spatial distribution of photo-generated carriers affect the measured result.A new formalism that enables greater insight into which factors dominate the TRPL decay dynamics was developed. By breaking down the carrier dynamics into drift, diffusion, and recombination terms this formalism can point which physical factors dominate the decay dynamics under various conditions and at different times during the decay. Using this mechanism, it was found that in a typical CdTe device under typical experimental conditions used in our laboratories, the faster part of the decay is dominated by drift and diffusion of carriers, while the slower part is dominated by carrier recombination.

Bio

Dr. Ana Kanevce received a Ph.D in Physics at Colorado State University doing characterization and modeling on thin-film solar cells. Since 2007 she has been a member of the Electro-Optical Characterization Group at the National Renewable Energy Laboratory. Her research is concentrated on different PV technologies, including silicon heterojunction solar cells, multijunction solar cells based on III-V materials, and thin-film polycrystalline solar cells with Cu(In,Ga)Se2, Cu2(Zn,Sn)Se4 and CdTe absorbers.

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Researchers should cite this work as follows:

  • Ana Kanevce (2014), "Insight into Time-Resolved Photoluminescence Measurements on Thin-film Solar Cells using Numerical Simulations," https://nanohub.org/resources/20881.

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Birck Technology Center, Room 1001, Purdue University, West Lafayette, IN

Insight into Time-Resolved Photoluminescence Measurements on Thin-film Solar Cells using Numerical Simulations
  • Insight into time- resolved photoluminescence measurements on thin- film solar cells using numerical simulations 1. Insight into time- resolved ph… 0
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  • Outline 2. Outline 151.81848515181849
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  • Increase Voc in CdTe solar cells 3. Increase Voc in CdTe solar cel… 236.40306973640307
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  • TRPL measurement 4. TRPL measurement 339.93993993993996
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  • TRPL measurement on a CdTe device 5. TRPL measurement on a CdTe dev… 370.93760427093764
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  • How to interpret TRPL on a CdTe device 6. How to interpret TRPL on a CdT… 452.61928595261929
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  • Modeling TRPL on a CdTe device 7. Modeling TRPL on a CdTe device 567.30063396730066
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  • The model 8. The model 613.61361361361367
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  • The model 9. The model 709.57624290957631
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  • Outline 10. Outline 868.40173506840176
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  • Two wavelength illumination 11. Two wavelength illumination 881.41474808141481
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  • Carrier motion during the decay (early times) 12. Carrier motion during the deca… 926.79346012679355
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  • Carrier motion during the decay (later times) 13. Carrier motion during the deca… 1066.4998331665
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  • Interface and bulk recombination 14. Interface and bulk recombinati… 1105.8058058058059
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  • Interface, bulk recombination and Voc 15. Interface, bulk recombination … 1209.4094094094094
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  • Impact of doping and injection on TRPL 16. Impact of doping and injection… 1391.0577243910577
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  • Summary (part 1) 17. Summary (part 1) 1466.1661661661663
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  • Outline 18. Outline 1512.6793460126794
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  • Dissecting different mechanisms 19. Dissecting different mechanism… 1531.2645979312647
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  • Dissecting different mechanisms 20. Dissecting different mechanism… 1659.7263930597264
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  • 6- factor analysis 21. 6- factor analysis 1697.7977977977978
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  • 4-factor analysis 22. 4-factor analysis 1791.9586252919587
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  • Recombination or carrier motion 23. Recombination or carrier motio… 1881.7817817817818
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  • Summary (part 2) 24. Summary (part 2) 1957.6576576576576
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  • Outline 25. Outline 2044.6446446446448
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  • Spatial generation of carriers 26. Spatial generation of carriers 2066.5331998665333
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  • Experimental 1PE and 2PE decays 27. Experimental 1PE and 2PE decay… 2203.06973640307
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  • Understand the 2PE measurement 28. Understand the 2PE measurement 2306.9069069069069
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  • Different spatial generation 29. Different spatial generation 2440.1735068401736
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  • Different spatial generation 30. Different spatial generation 2479.1458124791461
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  • Injection dependence 31. Injection dependence 2681.8485151818486
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  • Summary (part 3) 32. Summary (part 3) 2788.7554220887555
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  • Thank you for your attention 33. Thank you for your attention 2815.7157157157158
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