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Updated: Jul 16, 2026

Fabrication, Densification, and Replica Molding of 3D Carbon Nanotube Microstructures
Published on: July 2, 2012
Honeycomb Cell Structures Formed in Drop-Casting CNT Films for Highly Efficient Solar Absorber Applications
Saiful Islam1,2, Hiroshi Furuta1,2
1School of Systems Engineering, Kochi University of Technology, Kochi 782-8502, Japan.
Multi-walled carbon nanotube (MWCNT) honeycomb coatings on silicon substrates significantly enhance solar thermal absorption. Optimized structures with a 17% cell area ratio achieve high temperatures for efficient solar energy applications.
Area of Science:
- Materials Science
- Nanotechnology
- Renewable Energy
Background:
- Solar thermal absorbers are crucial for renewable energy applications.
- Enhancing absorption efficiency requires advanced material coatings.
- Multi-walled carbon nanotubes (MWCNTs) offer promising optical and thermal properties.
Purpose of the Study:
- To investigate MWCNT coatings for improved solar thermal absorption.
- To analyze the effect of self-organized honeycomb structures and cell area ratios (CARs) on absorption.
- To evaluate optical properties and thermal performance under varying irradiance.
Main Methods:
- Fabrication of MWCNT-coated absorbers with honeycomb structures using drop-casting.
- Varying CARs from ~60% to 17%.
- Optical property measurements (400-1651 nm) and solar thermal performance assessment (0.04-0.39 W/cm²).
Main Results:
- Honeycomb structures with ~17% CAR achieved high-temperature absorption despite moderate visible reflectance (8.4% at 550 nm).
- Infrared reflection increased significantly (80.5% at 1321 nm) for the 17% CAR structure.
- The 17% CAR structure consistently reached higher absorption temperatures (52.5 °C to 285.5 °C) across all irradiance levels.
Conclusions:
- Optimized MWCNT honeycomb structures, particularly with a ~17% CAR, are effective for high-temperature solar thermal absorption.
- A lower visible-to-infrared reflection ratio correlates with higher temperature absorption efficiency.
- This approach offers potential for cost-effective, large-scale production of efficient solar thermal absorbers for water heating and purification.
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