TY - JOUR
T1 - Structural, optical and photoelectrochemical studies on the nanodispersed titania
AU - Lee, Gi Won
AU - Bang, So Yeon
AU - Lee, Chaehyeon
AU - Kim, Won Mok
AU - Kim, Donghwan
AU - Kim, Kyungkon
AU - Park, Nam Gyu
N1 - Funding Information:
This work was supported by the KIST internal projects under contract 2E20750 and the MOCIE new and renewable energy R&D project under contract 2006-N-PV12-P-05.
PY - 2009/9
Y1 - 2009/9
N2 - Nanodispersion of aggregated TiO2 powders has been performed by microbead milling and its effect on photovoltaic performance has been investigated with dye-sensitized solar cell. Plasma-treated 30 μm-diameter zirconia beads are used to disperse the aggregated nanocrystalline TiO2 powders in ethanolic medium. Particle size distribution, surface area, film morphology, porosity, transmittance and haze are investigated with different milling speed. Microbead milling leads to a reduction of particle size, narrow size distribution and increase of surface area. A slight crystal phase transformation from anatase to rutile is also observed after microbead milling. Optical property is found to be influenced by microbead milling speed, where transmittance increases and haze decreases with increasing milling speed. Compared with photovoltaic performance of dye-sensitized solar cells based on titania before and after microbead milling, overall conversion efficiency is substantially improved from 4.46% to 6.31% after microbead milling at 2490 rpm for 90 min, corresponding to 42% increment, which is mainly due to a noticeable increase in photocurrent density, associated with highly dispersed characteristics. According to the photocurrent and photovoltage transient spectroscopic study, time constant for electron transport is hardly affected, while that for recombination is slightly decreased due to the increased surface area by nanodispersion.
AB - Nanodispersion of aggregated TiO2 powders has been performed by microbead milling and its effect on photovoltaic performance has been investigated with dye-sensitized solar cell. Plasma-treated 30 μm-diameter zirconia beads are used to disperse the aggregated nanocrystalline TiO2 powders in ethanolic medium. Particle size distribution, surface area, film morphology, porosity, transmittance and haze are investigated with different milling speed. Microbead milling leads to a reduction of particle size, narrow size distribution and increase of surface area. A slight crystal phase transformation from anatase to rutile is also observed after microbead milling. Optical property is found to be influenced by microbead milling speed, where transmittance increases and haze decreases with increasing milling speed. Compared with photovoltaic performance of dye-sensitized solar cells based on titania before and after microbead milling, overall conversion efficiency is substantially improved from 4.46% to 6.31% after microbead milling at 2490 rpm for 90 min, corresponding to 42% increment, which is mainly due to a noticeable increase in photocurrent density, associated with highly dispersed characteristics. According to the photocurrent and photovoltage transient spectroscopic study, time constant for electron transport is hardly affected, while that for recombination is slightly decreased due to the increased surface area by nanodispersion.
KW - Aggregation
KW - Dye-sensitized solar cell
KW - Haze
KW - Microbead milling
KW - Nanodispersion
UR - http://www.scopus.com/inward/record.url?scp=67349191852&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=67349191852&partnerID=8YFLogxK
U2 - 10.1016/j.cap.2008.09.002
DO - 10.1016/j.cap.2008.09.002
M3 - Article
AN - SCOPUS:67349191852
SN - 1567-1739
VL - 9
SP - 900
EP - 906
JO - Current Applied Physics
JF - Current Applied Physics
IS - 5
ER -