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Ruthenium sensitizers

The most commonly used methods for characterization of ruthenium sensitizers are elemental analysis, NMR, IR, Raman, UV-vis, and luminescence spectroscopy and cyclic voltammetry, HPLC, and X-ray crystallography. [Pg.752]

Wang P, Zakeeruddin SM, Moser JE, Nazeeruddin MK, Sekiguchi T, Gratzel M (2003) A stable-quasi-solid state dye-sensitized solar cell with amphiphilic ruthenium sensitizer and polymer gel electrolyte. Nature Mater 2 402-406... [Pg.514]

The cell is on the verge of commercialization, offering a potential alternative for the currently used silicon-based photovoltaic devices.12 An unprecedented conversion efficiency of 11% could be manufactured from relatively cheap materials.19 The most up-to-date efficient DSSCs are based on ruthenium complexes. Several representative ruthenium sensitizers possess high extinction coefficient and high photovoltaic performance are shown in Scheme 1.15-19... [Pg.162]

Light emitting electrochemical cells OLED Photovoltaic Ruthenium sensitizers... [Pg.114]

Kilsa K., Mayo E. L, Kuciauskas D., Villahermosa R., Lewis N. S., Winkler J. R. and Gray H. B. (2003), Effects of bridging ligands on the current-potential behavior and interfacial kinetics of ruthenium-sensitized nanocrystalline TiOa photoelectrodes , J. Phys. Chem. A 107, 3379-3383. [Pg.668]

More recently, a significant improvement in efficiency in solar energy systems was realized using nanocrystalline, high surface area TiC>2 as the electron acceptor and a special ruthenium sensitizer 1, which contained carboxylated bipyridine groups that could bind directly to the surface of the oxide. The first example was the Gratzel cell... [Pg.236]

Under full sunlight (air mass 1.5 global, intensity Is = l,000W/cm ), short circuit photo-currents ranging from 16 to 22mA/cm are reached with state-of-the art ruthenium sensitizers, while Voc is 0.7-0.86 V and the fill factor valnes 0.65-0.8. A certified overall power conversion efhciency of 10.4% was attained [62] in... [Pg.21]

Jiang KJ, Masaki N, Xia JB, Noda S, Yanagida S (2006) A novel ruthenium sensitizer with a hydrophobic 2-thiophen-2-yl-vinyl-conjugated bipyridyl ligand for effective dye sensitized Ti02 solar cells. Chem Comm 23 2460-2462... [Pg.368]

Nazeeruddin MK, De Angelis F, Fantacci S et al (2005) Combined experimental and DFT-TDDFT computational study of photoelectrochemical cell ruthenium sensitizers. J Am Chem Soc 127 16835-16847... [Pg.215]

Cao Y, Bai Y, Yu Q et al (2009) Dye-sensitized solar cells with a high absorptivity ruthenium sensitizer featuring a 2-(hexylthio)thiophene conjugated bipyridine. J Phys Chem C 113 6290-6297... [Pg.300]

Chen J, Bai F-Q, Wang J, Hao L, Xie Z-F, Pan Q-J, Zhang H-X (2012) Theoretical studies on spectroscopic properties of ruthenium sensitizers adsorbed to Ti02 film surface with connection mode for DSSC. Dyes Pigm 94(3) 459-468... [Pg.225]

D. Kuang, C. Klein, S. Ito, et al., High-efficiency and stable mesoscopic dye-sensitized solar cells based on a high molar extinction coefficient ruthenium sensitizer and nonvolatile electrolyte, Advanced Materials, vol. 19, no. 8, 1133 pages, 2007. [Pg.147]


See other pages where Ruthenium sensitizers is mentioned: [Pg.2925]    [Pg.197]    [Pg.197]    [Pg.264]    [Pg.149]    [Pg.190]    [Pg.368]    [Pg.96]    [Pg.224]    [Pg.225]    [Pg.1497]    [Pg.1499]    [Pg.137]    [Pg.653]    [Pg.117]   
See also in sourсe #XX -- [ Pg.113 ]

See also in sourсe #XX -- [ Pg.113 ]




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