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  4. Enhancing the performance of dye-sensitized solar cells by incorporating nanosilicate platelets in gel electrolyte
 
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Enhancing the performance of dye-sensitized solar cells by incorporating nanosilicate platelets in gel electrolyte

Journal
Solar Energy Materials and Solar Cells
Journal Volume
93
Journal Issue
10
Pages
1860-1864
Date Issued
2009
Author(s)
Lai, YH
Chiu, CW
Chen, JG
Wang, CC
Lin, JJ
Lin, KF
Ho, KC
JIANG-JEN LIN  
KUO-CHUAN HO  
DOI
10.1016/j.solmat.2009.06.027
URI
http://www.scopus.com/inward/record.url?eid=2-s2.0-68349113707&partnerID=MN8TOARS
http://scholars.lib.ntu.edu.tw/handle/123456789/347010
Abstract
Two kinds of gel-type dye-sensitized solar cells (DSSCs), composed of two types of electrolytes, were constructed and the respective cell performance was evaluated in this study. One electrolyte, TEOS-Triton X-100 gel, was based on a hybrid organic/inorganic gel electrolyte made by the sol-gel method and the other was based on poly(vinyidene fluoride-co-hexafluoro propylene) (PVDF-HFP) copolymer. TEOS-Triton X-100 gel was based on the reticulate structure of silica, formed by hydrolysis, and condensation of tetraethoxysilane (TEOS), while its organic subphase was a mixture of surfactant (Triton X-100) and ionic liquid electrolytes. Both DSSC gel-type electrolytes were composed of iodine, 1-propy-3-methyl-imidazolium iodide, and 3-methoxypropionitrile to create the redox couple of I3-/I-. Based on the results obtained from the I-V characteristics, it was found that the optimal iodine concentrations for the TEOS-Triton X-100 gel electrolyte and PVDF-HFP gel electrolyte are 0.05 M and 0.1 M, respectively. Although the increase in the iodine concentration could enhance the short-circuit current density (JSC), a further increase in the iodine concentration would reduce the JSC due to increased dark current. Therefore, the concentration of I2 is a significant factor in determining the performance of DSSCs. In order to enhance cell performance, the addition of nanosilicate platelets (NSPs) in the above-mentioned gel electrolytes was investigated. By incorporating NSP-Triton X-100 into the electrolytes, the JSC of the cells increased due to the decrease of diffusion resistance, while the open circuit voltage (VOC) remained almost the same. As the loading of the NSP-Triton X-100 in the TEOS-Triton X-100 gel electrolyte increased to 0.5 wt%, the JSC and the conversion efficiency increased from 8.5 to 12 mA/cm2 and from 3.6% to 4.7%, respectively. However, the JSC decreased as the loading of NSP-Triton X-100 exceeded 0.5 wt%. At higher NSP-Triton X-100 loading, NSPs acted as a barrier interface between the electrolyte and the dye molecules, hindering electron transfer, hence, reducing the cell's photocurrent density. The same behavior was also observed in the PVDF-HFP gel electrolyte DSSC system. © 2009 Elsevier B.V. All rights reserved.
Subjects
Dye-sensitized solar cells; Gel electrolytes; Nanosilicate platelets
SDGs

[SDGs]SDG7

Other Subjects
Cell performance; Concentration of; Diffusion resistance; Dye molecule; Dye-Sensitized solar cell; Dye-sensitized solar cells; Electron transfer; Gel electrolyte; Gel electrolytes; Gel-type; Imidazolium; Iodine concentration; Ionic liquid electrolytes; IV characteristics; Nanosilicate platelets; Organic/inorganic; Photocurrent density; PVDF-HFP; Redox couple; Reticulate structure; Significant factors; Sol-gel methods; Subphases; Tetraethoxysilanes; Triton X-100; Blood substitutes; Cell membranes; Concentration (process); Conversion efficiency; Electric potential; Electrolysis; Gelation; Gels; Industrial chemicals; Iodine; Ionic liquids; Ionization of liquids; Lithium batteries; Photoelectrochemical cells; Photovoltaic cells; Propylene; Silica; Sol-gel process; Solar cells; Surface active agents; Switching circuits; Electrolytes
Type
journal article

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