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J. Baxter, E. Aydil (2006)
Dye-sensitized solar cells based on semiconductor morphologies with ZnO nanowiresSolar Energy Materials and Solar Cells, 90
K. Keis, J. Lindgren, S. Lindquist, A. Hagfeldt (2000)
Studies of the adsorption process of Ru complexes in nanoporous ZnO electrodesLangmuir, 16
M. Law, Lori Greene, Justin Johnson, R. Saykally, P. Yang (2005)
Nanowire dye-sensitized solar cellsNature Materials, 4
C. Hughes (1987)
TelecommunicationsMicroprocess. Microsystems, 11
Kyungjun Hwang, S. Yoo, Sunghoon Jung, Dong-Won Park, Sun-Il Kim, Jae‐Wook Lee (2009)
Synthesis and Characterization of Nanostructured Titania Films for Dye-Sensitized Solar CellsBulletin of The Korean Chemical Society, 30
J. Bisquert, G. Garcia‐Belmonte, F. Fabregat‐Santiago, N. Ferriols, and Bogdanoff, E. Pereira (2000)
Doubling Exponent Models for the Analysis of Porous Film Electrodes by Impedance. Relaxation of TiO2 Nanoporous in Aqueous SolutionJournal of Physical Chemistry B, 104
J. Halme, Paula Vahermaa, K. Miettunen, P. Lund (2010)
Device Physics of Dye Solar CellsAdvanced Materials, 22
Hongxia Wang, Meinan Liu, Cheng Yan, J. Bell (2012)
Reduced electron recombination of dye-sensitized solar cells based on TiO2 spheres consisting of ultrathin nanosheets with [001] facet exposedBeilstein Journal of Nanotechnology, 3
A. Martinson, James McGarrah, Mohammed Parpia, J. Hupp (2006)
Dynamics of charge transport and recombination in ZnO nanorod array dye-sensitized solar cells.Physical chemistry chemical physics : PCCP, 8 40
A. Lamberti, A. Sacco, S. Bianco, E. Giuri, M. Quaglio, A. Chiodoni, E. Tresso (2011)
Microfluidic sealing and housing system for innovative dye-sensitized solar cell architectureMicroelectronic Engineering, 88
Tierui Zhang, W. Dong, Mary Keeter-Brewer, Sanjit Konar, Roland Njabon, Z. Tian (2006)
Site-specific nucleation and growth kinetics in hierarchical nanosyntheses of branched ZnO crystallites.Journal of the American Chemical Society, 128 33
C. Bauer, G. Boschloo, E. Mukhtar, A. Hagfeldt (2001)
Electron injection and recombination in Ru(dcbpy)2(NCS)2 sensitized nanostructured ZnOJournal of Physical Chemistry B, 105
A. Lamberti, R. Gazia, A. Sacco, S. Bianco, M. Quaglio, A. Chiodoni, E. Tresso, C. Pirri (2014)
Coral‐shaped ZnO nanostructures for dye‐sensitized solar cell photoanodesProgress in Photovoltaics: Research and Applications, 22
M. Barrell, A. Campaña, M. Delius, E. Geertsema, D. Leigh (2011)
Cover Picture: Light‐Driven Transport of a Molecular Walker in Either Direction along a Molecular Track (Angew. Chem. Int. Ed. 1/2011)Angewandte Chemie, 50
B. O'Regan, M. Grätzel (1991)
A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO2 filmsNature, 353
A. Yella, Hsuan‐Wei Lee, H. Tsao, C. Yi, A. Chandiran, Md. Nazeeruddin, E. Diau, C. Yeh, S. Zakeeruddin, M. Grätzel (2011)
Porphyrin-Sensitized Solar Cells with Cobalt (II/III)–Based Redox Electrolyte Exceed 12 Percent EfficiencyScience, 334
Wei Chen, Yongcai Qiu, Shihe Yang (2010)
A new ZnO nanotetrapods/SnO2 nanoparticles composite photoanode for high efficiency flexible dye-sensitized solar cells.Physical chemistry chemical physics : PCCP, 12 32
(2012)
Alexe-Ionescu and C
J. Bisquert, V. Vikhrenko (2004)
Interpretation of the Time Constants Measured by Kinetic Techniques in Nanostructured Semiconductor Electrodes and Dye-Sensitized Solar CellsJournal of Physical Chemistry B, 108
A. Zaban, Miri Greenshtein, J. Bisquert (2003)
Determination of the electron lifetime in nanocrystalline dye solar cells by open-circuit voltage decay measurements.Chemphyschem : a European journal of chemical physics and physical chemistry, 4 8
submitted
H. Koo, Yong Kim, Y. Lee, W. Lee, Kyung-Kon Kim, N. Park (2008)
Nano‐embossed Hollow Spherical TiO2 as Bifunctional Material for High‐Efficiency Dye‐Sensitized Solar CellsAdvanced Materials, 20
A. Martinson, M. Góes, F. Fabregat‐Santiago, J. Bisquert, M. Pellin, J. Hupp (2009)
Electron transport in dye-sensitized solar cells based on ZnO nanotubes: evidence for highly efficient charge collection and exceptionally rapid dynamics.The journal of physical chemistry. A, 113 16
Chun Cheng, Yantao Shi, Chao Zhu, Wei Li, Lin Wang, K. Fung, Ning Wang (2011)
ZnO hierarchical structures for efficient quasi-solid dye-sensitized solar cells.Physical chemistry chemical physics : PCCP, 13 22
Hsin-Ming Cheng, W. Chiu, Chia-Hua Lee, Song-Yeu Tsai, W. Hsieh (2008)
Formation of Branched ZnO Nanowires from Solvothermal Method and Dye-Sensitized Solar Cells ApplicationsJournal of Physical Chemistry C, 112
K. Keis, Eva Magnusson, H. Lindström, S. Lindquist, A. Hagfeldt (2002)
A 5% efficient photoelectrochemical solar cell based on nanostructured ZnO electrodesSolar Energy Materials and Solar Cells, 73
Hongxia Wang, Meinan Liu, Min Zhang, Peng Wang, H. Miura, Yan Cheng, J. Bell (2011)
Kinetics of electron recombination of dye-sensitized solar cells based on TiO2 nanorod arrays sensitized with different dyes.Physical chemistry chemical physics : PCCP, 13 38
I. Gonzalez‐Valls, M. Lira-Cantú (2009)
Vertically-aligned nanostructures of ZnO for excitonic solar cells: a reviewEnergy and Environmental Science, 2
T. Stergiopoulos, Andrei Ghicov, V. Likodimos, D. Tsoukleris, J. Kunze, P. Schmuki, P. Falaras (2008)
Dye-sensitized solar cells based on thick highly ordered TiO2 nanotubes produced by controlled anodic oxidation in non-aqueous electrolytic mediaNanotechnology, 19
(2004)
| Journal Name , [year], [vol] , 00–00 26 J. Bisquert and V. S. Vikhrenko,
Sponge-like nanostructured ZnO layers were successfully employed as photoanodes for the fabrication of highly efficient dye-sensitized solar cells. The sponge-like ZnO layers were obtained by room temperature radio-frequency magnetron sputtering deposition of metallic zinc, followed by thermal oxidation treatment in an ambient atmosphere. The porous films show a 3D branched nanomorphology, with a feature similar to natural coral. The morphological and optical properties of these layers were studied through field emission scanning electron microscopy, specific surface area measurements, ultraviolet–visible transmittance and absorption spectroscopy. The sponge-like ZnO film presents a high density of branches, with a relatively high specific surface area value, and fine optical transmittance. The morphology of the porous structure provides a high number of adsorption sites for the anchoring of sensitizer molecules, making it suitable for the fabrication of ZnO-based photoanodes for dye-sensitized solar cells. The light harvesting performance of the sensitized semiconductor was evaluated by current density vs. voltage measurements, incident photon-to-electron conversion efficiency, open circuit voltage decay and impedance spectroscopy. The modelling of the electrical characteristics evidences a higher electron lifetime and a longer charge diffusion length, if compared to standard TiO2 nanoparticle based photoanodes. For ZnO films with a thickness up to 18 μm, a photoconversion efficiency as high as 6.67% and a maximum value of the incident photon-to-electron collection efficiency equal to 87% at 530 nm were demonstrated.
Physical Chemistry Chemical Physics – Royal Society of Chemistry
Published: Nov 16, 2012
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