Efficiency and stability improvement of natural dye-sensitized solar cells using the electrospun composite of TiO2 nanofibres doped by the bio-Ca nanoparticles

被引:10
作者
Golshan, Malihe [1 ]
Osfouri, Shahriar [1 ]
Azin, Reza [2 ]
Jalali, Tahmineh [3 ]
Moheimani, Navid R. [4 ]
机构
[1] Persian Gulf Univ, Fac Petr Gas & Petrochem Engn, Dept Chem Engn, Bushehr 75169, Iran
[2] Persian Gulf Univ, Fac Petr Gas & Petrochem Engn, Dept Petr Engn, Bushehr, Iran
[3] Persian Gulf Univ, Fac Sci, Dept Phys, Bushehr, Iran
[4] Murdoch Univ, Algae R&D Ctr, Environm & Conservat Sci, Murdoch, WA, Australia
关键词
ca-doping; co-sensitizaton; DSSC; electrospinning; photoanode; TiO2; nanofibre; PHOTOANODE; DYNAMICS; ENERGY; DECAY;
D O I
10.1002/er.8242
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The dye-sensitized solar cells (DSSCs) can be effectively improved and stabilized by outstanding electrical and morphological characteristics of TiO2 nanofibres combined with bio-calcium doping. The pristine and bio-Ca-doped TiO2 nanofibres were fabricated using a cost-effective electrospinning technique. Biocompatible calcium carbonate nanoparticles (bio-Ca) were synthesized from the cuttlebone of Sepia Pharaonis. Moreover, a facile one-step procedure was employed to fabricate efficient TiO2 nanofibres-based DSSCs using a Pechini-type sol. This approach produced a highly porous dense film of TiO2 upon sintering without the need for the hot-pressing or adhesion layer steps. Based on the results, the DSSCs fabricated by the bio-Ca-doped TiO2 nanofibres showed the highest Isc$$ {I}_{sc} $$, Voc$$ {V}_{oc} $$, and eta$$ \eta $$ of 2.19 mA, 0.41 V, and 1.48% respectively. This superiority could be due to the higher specific surface area and the relatively smaller average diameter observed for bio-Ca-doped TiO2 nanofibres, which improved dye-loading and guided electron transport respectively. In addition, Ca2+ doping significantly suppressed the photocatalytic activity in the bio-Ca-doped TiO2 nanofibres owing to the formation of the TiO2 rutile-anatase combined phase. Besides, the substitution of Ti4+ with Ca2+ positively affects the conduction band of TiO2 and causes trap sites that retard the charge recombination. Our results also demonstrated that the bio-Ca-doped TiO2 nanofibres-based DSSC maintained about 78.38% of its initial efficiency after two weeks, while DSSCs fabricated by the TiO2 nanofibres and TiO2 nanoparticles retained 63.71% and 27.38% respectively. The superior stability could be due to the combined effect of nanoparticles into nanofibres transformation and bio-Ca doping.
引用
收藏
页码:15407 / 15418
页数:12
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