The Effect of Hole Transport Material Pore Filling on Photovoltaic Performance in Solid-State Dye-Sensitized Solar Cells

A detailed investigation of the effect of hole transport material (HTM) pore filling on the photovoltaic performance of solid‐state dye‐sensitized solar cells (ss‐DSCs) and the specific mechanisms involved is reported. It is demonstrated that the efficiency and photovoltaic characteristics of ss‐DSC...

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Veröffentlicht in:Advanced energy materials 2011-05, Vol.1 (3), p.407-414
Hauptverfasser: Melas-Kyriazi, John, Ding, I-Kang, Marchioro, Arianna, Punzi, Angela, Hardin, Brian E., Burkhard, George F., Tétreault, Nicolas, Grätzel, Michael, Moser, Jacques-E., McGehee, Michael D.
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Sprache:eng
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Zusammenfassung:A detailed investigation of the effect of hole transport material (HTM) pore filling on the photovoltaic performance of solid‐state dye‐sensitized solar cells (ss‐DSCs) and the specific mechanisms involved is reported. It is demonstrated that the efficiency and photovoltaic characteristics of ss‐DSCs improve with the pore filling fraction (PFF) of the HTM, 2,2’,7,7’‐tetrakis‐(N, N ‐di‐ p ‐methoxyphenylamine)9,9’‐spirobifluorene(spiro‐OMeTAD). The mechanisms through which the improvement of photovoltaic characteristics takes place were studied with transient absorption spectroscopy and transient photovoltage/photocurrent measurements. It is shown that as the spiro‐OMeTAD PFF is increased from 26% to 65%, there is a higher hole injection efficiency from dye cations to spiro‐OMeTAD because more dye molecules are covered with spiro‐OMeTAD, an order‐of‐magnitude slower recombination rate because holes can diffuse further away from the dye/HTM interface, and a 50% higher ambipolar diffusion coefficient due to an improved percolation network. Device simulations predict that if 100% PFF could be achieved for thicker devices, the efficiency of ss‐DSCs using a conventional ruthenium‐dye would increase by 25% beyond its current value. Hole transport material (HTM) pore filling is shown to strongly impact the efficiency of solid‐state dye‐sensitized solar cells. Increasing the pore filling fraction improves the coverage of dye molecules with HTM, reduces the hole concentration at the TiO2/dye/HTM interface, and improves the percolation of holes in the HTM, giving increased hole injection efficiency and reduced recombination.
ISSN:1614-6832
1614-6840
DOI:10.1002/aenm.201100046