Access the full text.
Sign up today, get DeepDyve free for 14 days.
V. Likodimos, T. Stergiopoulos, P. Falaras, R. Harikisun, J. Desilvestro, G. Tulloch (2009)
Prolonged Light and Thermal Stress Effects on Industrial Dye-Sensitized Solar Cells: A Micro-Raman Investigation on the Long-Term Stability of Aged CellsJournal of Physical Chemistry C, 113
Mingkui Wang, Peter Chen, R. Humphry‐Baker, S. Zakeeruddin, M. Grätzel (2009)
The influence of charge transport and recombination on the performance of dye-sensitized solar cells.Chemphyschem : a European journal of chemical physics and physical chemistry, 10 1
J. Bisquert, F. Fabregat‐Santiago, I. Mora‐Seró, G. Garcia‐Belmonte, E. Barea, E. Palomares (2008)
A review of recent results on electrochemical determination of the density of electronic states of nanostructured metal-oxide semiconductors and organic hole conductorsInorganica Chimica Acta, 361
S. Nakade, T. Kanzaki, W. Kubo, T. Kitamura, Y. Wada, S. Yanagida (2005)
Role of electrolytes on charge recombination in dye-sensitized TiO(2) solar cell (1): the case of solar cells using the I(-)/I(3)(-) redox couple.The journal of physical chemistry. B, 109 8
Qing Wang, J. Moser, M. Grätzel (2005)
Electrochemical impedance spectroscopic analysis of dye-sensitized solar cells.The journal of physical chemistry. B, 109 31
W. Kubo, K. Murakoshi, T. Kitamura, S. Yoshida, M. Haruki, K. Hanabusa, H. Shirai, Y. Wada, S. Yanagida (2001)
Quasi-Solid-State Dye-Sensitized TiO2 Solar Cells: Effective Charge Transport in Mesoporous Space Filled with Gel Electrolytes Containing Iodide and IodineJournal of Physical Chemistry B, 105
Muhammad Asghar, K. Miettunen, S. Mastroianni, J. Halme, H. Vahlman, P. Lund (2012)
In situ image processing method to investigate performance and stability of dye solar cellsSolar Energy, 86
J. Jennings, Qing Wang (2010)
Influence of Lithium Ion Concentration on Electron Injection, Transport, and Recombination in Dye-Sensitized Solar CellsJournal of Physical Chemistry C, 114
J. Bisquert, F. Fabregat‐Santiago, I. Mora‐Seró, G. Garcia‐Belmonte, S. Giménez (2009)
Electron Lifetime in Dye-Sensitized Solar Cells: Theory and Interpretation of MeasurementsJournal of Physical Chemistry C, 113
J. Halme, Paula Vahermaa, K. Miettunen, P. Lund (2010)
Device Physics of Dye Solar CellsAdvanced Materials, 22
N. Papageorgiou, P. Liska, A. Kay, M. Grätzel (1999)
Mediator Transport in Multilayer Nanocrystalline Photoelectrochemical Cell ConfigurationsJournal of The Electrochemical Society, 146
H. Pettersson, T. Gruszecki (2001)
Long-term stability of low-power dye-sensitised solar cells prepared by industrial methodsFuel and Energy Abstracts, 43
Qing Wang, S. Ito, M. Grätzel, F. Fabregat‐Santiago, I. Mora‐Seró, J. Bisquert, T. Bessho, H. Imai (2006)
Characteristics of high efficiency dye-sensitized solar cells.The journal of physical chemistry. B, 110 50
F. Fabregat‐Santiago, J. Bisquert, G. Garcia‐Belmonte, G. Boschloo, A. Hagfeldt (2005)
Influence of electrolyte in transport and recombination in dye-sensitized solar cells studied by impedance spectroscopySolar Energy Materials and Solar Cells, 87
Muhammad Asghar, K. Miettunen, J. Halme, Paula Vahermaa, M. Toivola, K. Aitola, P. Lund (2010)
Review of stability for advanced dye solar cellsEnergy and Environmental Science, 3
B. O'Regan, M. Grätzel (1991)
A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO2 filmsNature, 353
(2001)
Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim ChemPhysChem 0000, 00, 1 – 13 These are not the final page numbers! A
N. Kato, Y. Takeda, K. Higuchi, A. Takeichi, E. Sudo, Hiromitsu Tanaka, T. Motohiro, Toshiyuki Sano, Tatsuo Toyoda (2009)
Degradation analysis of dye-sensitized solar cell module after long-term stability test under outdoor working conditionSolar Energy Materials and Solar Cells, 93
F. Fabregat‐Santiago, J. Bisquert, E. Palomares, L. Otero, D. Kuang, S. Zakeeruddin, M. Grätzel (2007)
Correlation between Photovoltaic Performance and Impedance Spectroscopy of Dye-Sensitized Solar Cells Based on Ionic LiquidsJournal of Physical Chemistry C, 111
A. Hinsch, J. Kroon, R. Kern, I. Uhlendorf, J. Holzbock, A. Meyer, J. Ferber (2001)
Long‐term stability of dye‐sensitised solar cellsProgress in Photovoltaics: Research and Applications, 9
D. Bari, N. Wrachien, R. Tagliaferro, S. Penna, T. Brown, A. Reale, A. Carlo, G. Meneghesso, A. Cester (2011)
Thermal stress effects on Dye-Sensitized Solar Cells (DSSCs)Microelectron. Reliab., 51
A. Michaelis, H. Berneth, D. Haarer, S. Kostromine, R. Neigl, Ralph Schmidt (2001)
Electrochromic Dye System for Smart Window ApplicationsAdvanced Materials, 13
Helena Agrell, J. Lindgren, A. Hagfeldt (2004)
Coordinative interactions in a dye-sensitized solar cellJournal of Photochemistry and Photobiology A-chemistry, 164
Hiromitsu Tanaka, A. Takeichi, K. Higuchi, T. Motohiro, M. Takata, N. Hirota, Nakajima Junji, Tatsuo Toyoda (2009)
Long-term durability and degradation mechanism of dye-sensitized solar cells sensitized with indoline dyesSolar Energy Materials and Solar Cells, 93
N. Kato, K. Higuchi, Hiromitsu Tanaka, Nakajima Junji, Toshiyuki Sano, Tatsuo Toyoda (2011)
Improvement in long-term stability of dye-sensitized solar cell for outdoor useSolar Energy Materials and Solar Cells, 95
Yeru Liu, J. Jennings, Yao Huang, Qing Wang, S. Zakeeruddin, M. Grätzel (2011)
Cobalt Redox Mediators for Ruthenium-Based Dye-Sensitized Solar Cells: A Combined Impedance Spectroscopy and Near-IR Transmittance StudyJournal of Physical Chemistry C, 115
R. Harikisun, H. Desilvestro (2011)
Long-term stability of dye solar cellsSolar Energy, 85
F. Fabregat‐Santiago, J. Bisquert, L. Cevey, Peter Chen, Mingkui Wang, S. Zakeeruddin, M. Grätzel (2009)
Electron transport and recombination in solid-state dye solar cell with spiro-OMeTAD as hole conductor.Journal of the American Chemical Society, 131 2
S. Nakade, Y. Saito, W. Kubo, T. Kitamura, Y. Wada, S. Yanagida (2003)
Influence of TiO2 Nanoparticle Size on Electron Diffusion and Recombination in Dye-Sensitized TiO2 Solar CellsJournal of Physical Chemistry B, 107
J. Goldstein, I. Yakupov, B. Breen, S. Freedman (2009)
Development of large area photovoltaic dye cells at 3GSolar2009 34th IEEE Photovoltaic Specialists Conference (PVSC)
J. Bisquert (2003)
Chemical capacitance of nanostructured semiconductors: its origin and significance for nanocomposite solar cellsPhysical Chemistry Chemical Physics, 5
A. Andersen, J. Halme, T. Lund, M. Asghar, P. Nguyen, K. Miettunen, Erno Kemppainen, O. Albrektsen (2011)
Charge Transport and Photocurrent Generation Characteristics in Dye Solar Cells Containing Thermally Degraded N719 Dye MoleculesJournal of Physical Chemistry C, 115
K. Miettunen, J. Halme, A. Visuri, P. Lund (2011)
Two-Dimensional Time-Dependent Numerical Modeling of Edge Effects in Dye Solar CellsJournal of Physical Chemistry C, 115
B. Macht, M. Turrión, A. Barkschat, P. Salvador, K. Ellmer, H. Tributsch (2002)
Patterns of efficiency and degradation in dye sensitization solar cells measured with imaging techniquesSolar Energy Materials and Solar Cells, 73
G. Boschloo, A. Hagfeldt (2009)
Characteristics of the iodide/triiodide redox mediator in dye-sensitized solar cells.Accounts of chemical research, 42 11
M. Junghänel, H. Tributsch (2005)
Role of nanochemical environments in porous TiO2 in photocurrent efficiency and degradation in dye sensitized solar cells.The journal of physical chemistry. B, 109 48
Piers Barnes, Lingxuan Liu, Xiaoe Li, Assaf Anderson, Hawraa Kisserwan, T. Ghaddar, J. Durrant, B. O'Regan (2009)
Re-evaluation of recombination losses in dye-sensitized cells: the failure of dynamic relaxation methods to correctly predict diffusion length in nanoporous photoelectrodes.Nano letters, 9 10
Qing Wang, Zhipan Zhang, S. Zakeeruddin, M. Graetzel (2008)
Enhancement of the performance of dye-sensitized solar cell by formation of shallow transport levels under visible light illuminationJournal of Physical Chemistry C, 112
(2005)
Energy Mater. Sol
A. Hauch, A. Georg (2001)
Diffusion in the electrolyte and charge-transfer reaction at the platinum electrode in dye-sensitized solar cellsElectrochimica Acta, 46
A long‐term life test (3200 h) on large‐area dye‐sensitized cells is performed both under outdoor conditions, in the sunny Mediterranean climate in Rome (Italy), and under continuous light soaking (1 Sun, 85 °C). Different degradation rates are investigated for the outdoor samples with horizontally and vertically oriented cells (azimuth South, tilt angle 25°). Thirty identical photocells (active area=3.6 cm2, conversion efficiencies=(4.8±0.2) %) are aged using a robust master‐plate configuration. After the first 1000 h of testing in open‐circuit conditions, some of the test samples are set near the maximum power point (MPP) and the life test continued further until 3200 h. A detailed analysis of the physical parameters obtained by electrochemical impedance is given together with electrolyte transmittance variation with time as a function of the ageing conditions. Faster degradation in devices working at the MPP is observed, due mainly to a progressive decrease of the triiodide concentration in the electrolyte and a likely alteration at the titania/electrolyte interface. Outdoor devices working with vertically oriented cells show clearly that the orientation of long‐striped cells can affect the lifetime. The aged cells suffer an increase of recombination rate, change in the chemical capacitance, and positive shift of the titania conduction band level. A strong correlation between the increase of the electrolyte diffusion resistance and degradation phenomena is found.
ChemPhysChem – Wiley
Published: Aug 27, 2012
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.