Cost‐effective dye‐sensitized solar cells based on rutile‐phase three‐dimensional TiO2 hierarchical nanostructures

Author:

G. Arthi1,Selvam Rajiv1,Y. Hayakawa2,J. Archana3,M. Navaneethan3,S. Ponnusamy3,C. Muthamizhchelvan3,Ramaraj Sankar Ganesh45

Affiliation:

1. Department of Mechanical Engineering, School of Engineering and Information Technology Manipal Acadamy of Higher Education Dubai United Arab Emirates

2. Research Institute of Electronics Shizuoka University Shizuoka Japan

3. Department of Physics and Nanotechnology SRM Institute of Science and Technology Kattankulathur India

4. Department of Bioengineering The University of Tokyo Tokyo Japan

5. Department of Materials Physics, Saveetha School of Engineering Saveetha Institute of Medical and Technical Sciences (SIMTS) Chennai Tamil Nadu India

Abstract

AbstractSpecifically engineered three‐dimensional (3D) and 1D morphologies are expected to play significant roles in the development of next‐generation dye‐sensitized solar cells. In this study, using a hydrothermal approach without a surfactant or template, we attempted to synthesize a 3D hierarchical rutile titanium dioxide (TiO2) architecture by varying the growth temperature and time. X‐ray diffraction patterns of the synthesized TiO2 correlated well with rutile TiO2. Scanning electron microscopy images exhibited different nanostructures, such as nanorods, aggregated nanorods, and 3D TiO2 microflowers comprised of nanorods at 100°C, 130°C, and 160°C, respectively, after growth for 6 h. A significantly improved efficiency was observed for the TiO2 microflowers. The TiO2 microflowers exhibited an efficiency of 1.16%, short‐circuit current density of 12.8 mA cm−2, open‐circuit voltage of 0.692 V, and fill factor of 0.67.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Medical Laboratory Technology,Instrumentation,Histology,Anatomy

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