Photovoltaic Properties of Polyaniline-Titania Composite for Hybrid Solar Cells Applications

2009 ◽  
Vol 1211 ◽  
Author(s):  
Michael Ibrahim Ibrahim ◽  
Maria Joseph Bassil ◽  
Umit B. Demirci ◽  
Georges El Hajj Moussa ◽  
Vincent Salles ◽  
...  

AbstractSolar energy harvesting has been extensively studied in the last three decades to provide a green energy source. Hybrid photovoltaics (HPV) based on titania (TiO2) are researched for their easiness of production and low cost. Nanostructured mesoporous titania films and conductive polymers were used recently to form hybrid solar cells [1]. TiO2, mainly an n-type semiconductor with a band gap of 4.2 eV, is employed in several applications from which paints form the highest world use of titania making it an attractive material to use in HPV industry. On the other side, our targeted conductive polymer is polyaniline (PANI), a hole conductor polymer, which is used in such HPV cells due to its high charge-carriers mobility, absorption coefficient in the visible range and environmental stability. PANI and nanocrystalline TiO2 films fabricated using spin coating or layer by layer assembly techniques behave as a p-n heterojunction diode and can be used as solar cells [2-4].Precursor solutions are prepared by polymerizing aniline-HCl inside an aqueous solution of titania. To study the effect of the precursor concentration on the PANI-TiO2 composite, polymerization of aniline is held in diverse TiO2 concentrations in water. Industrial grade TiO2 powders with particle size ranging from 200 nm to several μm are used. PANI-TiO2 precursor solutions are dip coated or slot dyed on various substrates such as PMMA, PET and PP, all with metal oxide conductive coatings. Bulk PANI-TiO2 pellets are prepared for comparison. The electrical and photovoltaic properties of the obtained films and pellets are investigated to choose the optimum blend composition for HPV cell. Finally a theoretical study and an analytical model of the HPV cell are presented relating the size of TiO2 and PANI particles and their respective geometrical distribution inside the blend to the transport characteristics of charge carriers and the overall efficiency of the HPV cell.[1] M. McGehee, MRS Bulletin, Vol. 34, No. 2, February 2009.[2] Z. Liu, W. Guo, D. Fu and W. Chen, Synthetic Metals, Vol. 156, pp. 414–416, 2006.[3] Z. Liu, J. Zhou, H. Xue, L. Shen, H. Zang and W. Chen, Synthetic Metals, Vol. 156, pp. 721–723, 2006.[4] X. Zhang, G. Yan, H. Ding and Y. Shan, Materials Chemistry and Physics, Vol. 102, pp. 249–254, 2007.

2014 ◽  
Vol 798-799 ◽  
pp. 312-316 ◽  
Author(s):  
Daliana Muller ◽  
Geneviève K. Pinheiro ◽  
Letícia T. Scarabelot ◽  
Jonathan F. França ◽  
Dachamir Hotza ◽  
...  

The development of organic materials with photovoltaic properties should enable the production of polymeric solar cells with high conversion efficiency. Due to low production cost and conversion efficiency above 10%, organic solar cells have great potential to compete with inorganic photovoltaic cells. This work proposes the development and integration of ETA (extremely thin absorber) photovoltaic cells, based on titanium oxide films and nanostructured conductive polymer in ceramic tiles, with the purpose of increasing the available area for sunlight capture, normally limited to roofs, expanding it onto the lateral sides of buildings. The nanostructured TiO2 was obtained by sol-gel process from titanium isopropoxide, followed by supercritical CO2 extraction in order to obtain a nanostructured aerogel. The conductive polymer used was the poly-3.4 (ethylenedioxythiophene)/polystyrene sulfonate (PEDOT:PSS) synthesized with iron III p-toluene sulfonate as an oxidizing agent. The materials were deposited layer by layer on a Cu electrode mounted on a ceramic tile piece, covered with glass containing a thin conductive layer of indium doped tin oxide (ITO). Transmission electron microscopy (TEM) revealed that the nanostructured titania aerogels exhibit particle sizes in the range of 2-5 nm. Preliminary studies have shown that the developed solar cell show a behavior typical of diodes (characteristic I×V curve) when subjected to different wavelength lamps (fluorescent and UV). Ceramic wall and roof tiles with photovoltaic properties, independently of the conversion efficiency, could serve as auxiliary energy sources to reduce expenses with conventional electricity.


Langmuir ◽  
2012 ◽  
Vol 28 (28) ◽  
pp. 10620-10626 ◽  
Author(s):  
Yong Joo Kim ◽  
Kyeong Ha Kim ◽  
Paul Kang ◽  
Hark Jin Kim ◽  
Young Sik Choi ◽  
...  

2009 ◽  
Vol 19 (23) ◽  
pp. 3788-3795 ◽  
Author(s):  
Marc Daniel Heinemann ◽  
Karsten von Maydell ◽  
Folker Zutz ◽  
Joanna Kolny-Olesiak ◽  
Holgert Borchert ◽  
...  

RSC Advances ◽  
2016 ◽  
Vol 6 (90) ◽  
pp. 86836-86842 ◽  
Author(s):  
Cheuk-yi Lam ◽  
Sanqiang Shi ◽  
Jian Lu ◽  
Paddy K. L. Chan

The mechanisms causing the improvement of PCE in hybrid SiNWs/PEDOT:PSS solar cells by formic acid treatment were investigated.


2010 ◽  
Vol 19 (04) ◽  
pp. 703-711 ◽  
Author(s):  
NOBUYUKI MATSUKI ◽  
YOSHITAKA NAKANO ◽  
YOSHIHIRO IROKAWA ◽  
MASATOMO SUMIYA

We have investigated the heterointerface properties of recently developed hybrid solar cells comprising a Schottky contact made of transparent conductive polymer (TCP) and an underlying GaN semiconductor layer. The heterointerface capacitance induced by the depletion layer under the TCP Schottky contact showed a rapid drop at a specific frequency. An intrinsic capacitance component that was derived from the capacitance–frequency (C–f) characteristics of the heterointerface showed clear correlation with the open circuit voltage. Hence, the C–f characterization using TCP Schottky contacts is indicative of the quality of the heterointerface.


2006 ◽  
Vol 156 (18-20) ◽  
pp. 1213-1217 ◽  
Author(s):  
Yuki Yoshida ◽  
Makoto Nakamura ◽  
Senku Tanaka ◽  
Ichiro Hiromitsu ◽  
Yasuhisa Fujita ◽  
...  

2015 ◽  
Vol 7 (4) ◽  
pp. 2359-2366 ◽  
Author(s):  
Mohan Ramesh ◽  
Karunakara Moorthy Boopathi ◽  
Tzu-Yen Huang ◽  
Yu-Ching Huang ◽  
Cheng-Si Tsao ◽  
...  

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