ZnO nanoflowers-based photoanodes : aqueous chemical synthesis, microstructure and optical properties

GND
1210585111
Zugehörigkeit
Institute for Physical Chemistry and Abbe Center of Photonics, Friedrich Schiller University Jena, Helmholtzweg 4, 07743 Jena,Germany
Wahyuono, Ruri Agung;
Zugehörigkeit
Leibniz Institute of Photonic Technology (IPHT) Jena e. V., Albert-Einstein-Str. 9, 07745 Jena,Germany
Schmidt, Christa;
GND
135981941X
Zugehörigkeit
Leibniz Institute of Photonic Technology (IPHT) Jena e. V., Albert-Einstein-Str. 9, 07745 Jena,Germany
Dellith, Andrea;
GND
135947227
Zugehörigkeit
Leibniz Institute of Photonic Technology (IPHT) Jena e. V., Albert-Einstein-Str. 9, 07745 Jena,Germany
Dellith, Jan;
GND
140397183
ORCID
0000-0003-4989-5207
VIAF
107101404
Zugehörigkeit
Institute for Physical Chemistry and Abbe Center of Photonics, Friedrich Schiller University Jena, Helmholtzweg 4, 07743 Jena,Germany
Schulz, Martin;
GND
1060644495
Zugehörigkeit
Otto Schott Institute of Materials Research, Friedrich Schiller University Jena, Löbdergraben 32, Jena,Germany
Seyring, Martin;
GND
1191795233
Zugehörigkeit
Otto Schott Institute of Materials Research, Friedrich Schiller University Jena, Löbdergraben 32, Jena,Germany
Rettenmayr, Markus;
GND
1037442903
Zugehörigkeit
Leibniz Institute of Photonic Technology (IPHT) Jena e. V., Albert-Einstein-Str. 9, 07745 Jena,Germany
Plentz, Jonathan;
GND
131343971
Zugehörigkeit
Leibniz Institute of Photonic Technology (IPHT) Jena e. V., Albert-Einstein-Str. 9, 07745 Jena,Germany
Dietzek, Benjamin

We have developed an efficient, low temperature, synthetic route for ZnO nanoflowers (NFs) as photoanode material. This alternative route yields small flowerlike nanostructures, built from densely self-assembled tip-ended rod structures. The obtained ZnO NFs possess a large bandgap of 3.27 - 3.39 eV, enabling the generation of an average open current voltage of 0.56 V. Additionally, they show a high internal light harvesting of 14.6•10 -7 A-mol -1 . The growth mechanism and self-assembly of ZnO NFs were studied in detail by joint spectroscopic-TEM investigations. It is shown that the ZnO crystallite size increases with increasing annealing temperatures and that the stress and the improved crystallinity are induced by annealing and reduce the lattice strain and the dislocation density. The bandgaps of ZnO are affected by the lattice strain revealing an optimal region of lattice strain to gain high bandgap energies. The properties of the synthesized ZnO NFs are compared with other morphologies, i.e . ZnO spherical aggregates (SPs) and ZnO nanorods (NRs), and are tested as electrode materials in dye-sensitized solar cells.

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Rechteinhaber: © 2016 Benjamin Dietzek et al., published by De Gruyter Open

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