详细信息
A fast approach to optimize dye loading of photoanode via ultrasonic technique for highly efficient dye-sensitized solar cells
文献类型:期刊文献
中文题名:A fast approach to optimize dye loading of photoanode via ultrasonic technique for highly efficient dye-sensitized solar cells
英文题名:A fast approach to optimize dye loading of photoanode via ultrasonic technique for highly efficient dye-sensitized solar cells
作者:Jue Chen[1];Xing Li[1];Wenjun Wu[1];Jianli Hua[1]
机构:[1]Key Laboratory for Advanced Materials and Institute of Fine Chemicals,East China University of Science and Technology
年份:2015
卷号:24
期号:6
起止页码:750
中文期刊名:Journal of Energy Chemistry
外文期刊名:能源化学(英文版)
收录:CSTPCD;;Scopus;CSCD:【CSCD2015_2016】;
基金:supported by the Science Fund for Creative Research Groups(21421004);the National Basic Research 973 Program(2013CB733700);NSFC/China(21172073,21372082,21572062 and 91233207)
语种:英文
中文关键词:Ultrasonic technique Fast dye loading Photoanode High efficiency DSSC
外文关键词:Ultrasonic technique Fast dye loading Photoanode High efficiency DSSC
摘要:A distinctive method is proposed by simply utilizing ultrasonic technique in Ti02 electrode fabrication in order to improve the optoelectronic performance of dye-sensitized solar cells (DSSCs). Dye molecules are at random and single molecular state in the ultrasonic field and the ultrasonic wave favors the diffusion and adsorption processes of dye molecules. As a result, the introduction of ultrasonic technique at room temperature leads to faster and more well-distributed dye adsorption on TiO2 as well as higher cell efficiency than regular deposition, thus the fabrication time is markedly reduced. It is found that the device based on 40 kHz ultrasonic (within 1 h) with N719 exhibits a Voc of 789 mV, Jsc of 14.94 mA]cm2 and fill factor (FF) of 69.3, yielding power conversion efficiency (PCE) of 8.16%, which is higher than device regularly dyed for 12 h (PCE = 8.06%). In addition, the DSSC devices obtain the best efficiency (PCE = 8.68%) when the ultrasonic deposition time increases to 2.5 h. The DSSCs fabricated via ultrasonic technique presents more dye loading, larger photocurrent, less charge recombination and higher photovoltage. The charge extraction and electron impedance spectroscopy (EIS) were performed to understand the influence of ultrasonic technique on the electron recombination and performance of DSSCs.
A distinctive method is proposed by simply utilizing ultrasonic technique in Ti02 electrode fabrication in order to improve the optoelectronic performance of dye-sensitized solar cells (DSSCs). Dye molecules are at random and single molecular state in the ultrasonic field and the ultrasonic wave favors the diffusion and adsorption processes of dye molecules. As a result, the introduction of ultrasonic technique at room temperature leads to faster and more well-distributed dye adsorption on TiO2 as well as higher cell efficiency than regular deposition, thus the fabrication time is markedly reduced. It is found that the device based on 40 kHz ultrasonic (within 1 h) with N719 exhibits a Voc of 789 mV, Jsc of 14.94 mA]cm2 and fill factor (FF) of 69.3, yielding power conversion efficiency (PCE) of 8.16%, which is higher than device regularly dyed for 12 h (PCE = 8.06%). In addition, the DSSC devices obtain the best efficiency (PCE = 8.68%) when the ultrasonic deposition time increases to 2.5 h. The DSSCs fabricated via ultrasonic technique presents more dye loading, larger photocurrent, less charge recombination and higher photovoltage. The charge extraction and electron impedance spectroscopy (EIS) were performed to understand the influence of ultrasonic technique on the electron recombination and performance of DSSCs.
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