| Literature DB >> 26019696 |
Go Kawamura1, Hayato Ohmi1, Wai Kian Tan1, Zainovia Lockman2, Hiroyuki Muto1, Atsunori Matsuda1.
Abstract
ABSTRACT: Dye-sensitized solar cells composed of a photoanode of Ag nanoparticle (NP)-deposited TiO2 nanotube (TNT) arrays were fabricated. The TNT arrays were prepared by anodizing Ti films on fluorine-doped tin oxide (FTO)-coated glass substrates. Efficient charge transportation through the ordered nanostructure of TNT arrays should be carried out compared to conventional particulate TiO2 electrodes. However, it has been a big challenge to grow TNT arrays on FTO glass substrates with the lengths needed for sufficient light-harvesting (tens of micrometers). In this work, we deposited Ag nanoparticles (NPs) on the wall of TNT arrays to enhance light-harvesting property. Dye-sensitized solar cells with these Ag NP-deposited TNT arrays yielded a higher power conversion efficiency (2.03 %) than those without Ag NPs (1.39 %). PACS CODES: 06.60.Ei Sample preparation, 81.05.Bx Metals, Semimetals, Alloys, 81.07.De Nanotubes.Entities:
Keywords: Ag nanoparticles; Anodization; Dye-sensitized solar cells; Light harvesting; TiO2 nanotube arrays
Year: 2015 PMID: 26019696 PMCID: PMC4440869 DOI: 10.1186/s11671-015-0924-1
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Illustration of fabricated DSSC
Fig. 2SEM image of as-anodized TNT arrays
Fig. 3Variation of tube lengths and pore sizes of TNT arrays as functions of applied voltage (a) and anodizing time (b)
Fig. 4XRD patterns of TNT arrays before and after heat treatment and subsequent Ag nanoparticle deposition (a). Cross-sectional TEM (b) and EDX mappings associated with the corresponding TEM image (c) of Ag nanoparticle deposited-TNT arrays
Fig. 5UV-Vis spectra of TNT arrays before and after Ag nanoparticle deposition and dye loading
Fig. 6Current-voltage and power-voltage characteristics of DSSC fabricated using TNT arrays without (a) and with (b) Ag nanoparticles. The blue line (power, P) was given by P = I × V