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Synthesis and characterization of ZnO nanowires and their integration into dye-sensitized solar cells

Nanotechnology · 2006 · Vol. 17(11) · pp. S304–S312
Jason B. BaxterAlthea WalkerKim van OmmeringEray S. Aydil

Abstract

ZnO nanowires, grown on transparent conducting oxide substrates from aqueous solutions of methenamine and Zn(NO3)2, were integrated as the wide band gap semiconductor into dye-sensitized solar cells. ZnO nanowires and their growth mechanisms were studied using electron microscopy, x-ray diffraction and photoluminescence measurements. The solution growth method forms dense arrays of long nanowires oriented normal to the substrate surface because nanowires growing at off-normal angles are prevented from growing further when they run into neighbouring wires. Dye-sensitized solar cells with ZnO nanowires were assembled and characterized using optical and electrical measurements. Short circuit current densities of 1.3 mA cm−2, and overall power conversion efficiencies of 0.3% were achieved with 8 µm long nanowires. Photocurrent and efficiency increase with increasing nanowire length and improved light harvesting. Low surface area and a shunt that appears under light illumination limit the solar cell performance. Internal quantum efficiencies were similar for nanowires of all lengths, indicating that electron transport is not limited by the nanowire dimensions for aspect ratios less than 70.

ZnO doping and propertiesQuantum Dots Synthesis And PropertiesAdvanced Photocatalysis TechniquesNanowireMaterials sciencePhotocurrentEnergy conversion efficiencyPhotoluminescenceOptoelectronicsSemiconductorSolar cellNanotechnologyScanning electron microscope

Funding

  • National Science Foundation
Citations
432
FWCI
16.72
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References
Mechanisms behind green photoluminescence in ZnO phosphor powders
Journal of Applied Physics · 1996 · 3,646 citations
Nanowire dye-sensitized solar cells
Nature Materials · 2005 · 5,289 citations
Photoelectrochemical cells
Nature · 2001 · 12,536 citations
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