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  4. High performance dye-sensitized solar cells based on platinum nanoparticle/multi-wall carbon nanotube counter electrodes: The role of annealing
 
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High performance dye-sensitized solar cells based on platinum nanoparticle/multi-wall carbon nanotube counter electrodes: The role of annealing

Journal
Journal of Power Sources
Date Issued
2011
Author(s)
Huang, K.-C.
Wang, Y.-C.
Chen, P.-Y.
Lai, Y.-H.
Huang, J.-H.
Chen, Y.-H.
Dong, R.-X.
Chu, C.-W.
Lin, J.-J.
KUO-CHUAN HO  
JIANG-JEN LIN  
DOI
10.1016/j.jpowsour.2011.11.031
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-83255186993&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/363178
Abstract
A composite film is coated on the FTO using a solution, containing a synthesized dispersant, poly(oxyethylene)-segmented imide (POEM), dihydrogen hexachloroplatinate (H2PtCl6), and multi-wall carbon nanotube (MWCNT); the thus coated FTO is used as the counter electrode (CE) for a dye-sensitized solar cell (DSSC). The annealing temperature of the composite film, in the range of 110–580 °C, is found to be crucial for optimizing its catalytic ability to obtain the best possible performance for the DSSC. About 47% loss in mass for the POEM/H2PtCl6/MWCNT composite is observed from 110 to 390 °C, due to not only the progressive formation of PtNPs from H2PtCl6 but the decomposition of POEM. Therefore, the efficiencies (η) of DSSCs applying these CEs are enhanced from 1.28 ± 0.08% (110 °C) to 8.47 ± 0.21% (390 °C). The mass of the composite loses dramatically under heating above 390 °C, due to the decomposition of MWCNTs. The η decreases to 7.77 ± 0.15% at 450 °C because the decrease in surface roughness of film. PtNPs grow in sizes from 450 to 580 °C, resulting in the further decrease in catalytic ability of film and the observed η from 7.77 ± 0.15% to 7.19 ± 0.21%.
Type
journal article

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