Analysis and simulation of incident photon to current efficiency in dye sensitized solar cells. Gentilini, D., D’Ercole, D., Gagliardi, A., Brunetti, A., Reale, A., Brown, T., & Carlo, A. D. Superlattices and Microstructures, 47(1):192 – 196, 2010. \textlessce:title\textgreaterProceedings of the 9th International Conference on Physics of Light-Matter Coupling in Nanostructures, PLMCN 2009 (Lecce - Italy)\textless/ce:title\textgreater
Analysis and simulation of incident photon to current efficiency in dye sensitized solar cells [link]Paper  doi  abstract   bibtex   
Conversion of solar energy into electricity is a challenging issue of today’s renewable energy. Electrochemical dye solar cells (DSC), based on nanostructured TiO2 particles are a very promising class of photovoltaic devices [6]. The mechanism beyond the conversion of the light is quite different from any other solid state solar cell, resulting from the interplay of a fine tuning of the energy levels of the cell components and a delicate fabrication process. This complexity needs a reliable transport model, able to catch the device as a whole and applicable to experimental set up. We developed an extension of TiberCAD [7] code to simulate such kind of devices and compared the calculation with incident photon to current efficiency (IPCE) measurements.
@article{gentilini_analysis_2010,
	title = {Analysis and simulation of incident photon to current efficiency in dye sensitized solar cells},
	volume = {47},
	issn = {0749-6036},
	url = {http://www.sciencedirect.com/science/article/pii/S0749603609002171},
	doi = {10.1016/j.spmi.2009.10.005},
	abstract = {Conversion of solar energy into electricity is a challenging issue of today’s renewable energy. Electrochemical dye solar cells (DSC), based on nanostructured TiO2 particles are a very promising class of photovoltaic devices [6]. The mechanism beyond the conversion of the light is quite different from any other solid state solar cell, resulting from the interplay of a fine tuning of the energy levels of the cell components and a delicate fabrication process. This complexity needs a reliable transport model, able to catch the device as a whole and applicable to experimental set up. We developed an extension of TiberCAD [7] code to simulate such kind of devices and compared the calculation with incident photon to current efficiency (IPCE) measurements.},
	number = {1},
	journal = {Superlattices and Microstructures},
	author = {Gentilini, D. and D’Ercole, D. and Gagliardi, A. and Brunetti, A. and Reale, A. and Brown, T. and Carlo, A. Di},
	year = {2010},
	note = {{\textless}ce:title{\textgreater}Proceedings of the 9th International Conference on Physics of Light-Matter Coupling in Nanostructures, PLMCN 2009 (Lecce - Italy){\textless}/ce:title{\textgreater}},
	keywords = {Dye, cell, solar},
	pages = {192 -- 196}
}

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