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Honeycomb Cell Structures Formed in Drop-Casting CNT Films for Highly Efficient Solar Absorber Applications

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Date 2024 Oct 25
PMID 39452969
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Abstract

This study investigates the process of using multi-walled carbon nanotube (MWCNT) coatings to enhance lamp heating temperatures for solar thermal absorption applications. The primary focus is studying the effects of the self-organized honeycomb structures of CNTs formed on silicon substrates on different cell area ratios (CARs). The drop-casting process was used to develop honeycomb-structured MWCNT-coated absorbers with varying CAR values ranging from ~60% to 17%. The optical properties were investigated within the visible (400-800 nm) and near-infrared (934-1651 nm) wavelength ranges. Although fully coated MWCNT absorbers showed the lowest reflectance, honeycomb structures with a ~17% CAR achieved high-temperature absorption. These structures maintained 8.4% reflectance at 550 nm, but their infrared reflection dramatically increased to 80.5% at 1321 nm. The solar thermal performance was assessed throughout a range of irradiance intensities, from 0.04 W/cm to 0.39 W/cm. The honeycomb structure with a ~17% CAR value consistently performed better than the other structures by reaching the highest absorption temperatures (ranging from 52.5 °C to 285.5 °C) across all measured intensities. A direct correlation was observed between the reflection ratio (visible: 550 nm/infrared: 1321 nm) and the temperature absorption efficiency, where lower reflection ratios were associated with higher temperature absorption. This study highlights the significant potential for the large-scale production of cost-effective solar thermal absorbers through the application of optimized honeycomb-structured absorbers coated with MWCNTs. These contributions enhance solar energy efficiency for applications in water heating and purification, thereby promoting sustainable development.

References
1.
Islam S, Furuta H . Recent Development of Carbon-Nanotube-Based Solar Heat Absorption Devices and Their Application. Nanomaterials (Basel). 2022; 12(21). PMC: 9658299. DOI: 10.3390/nano12213871. View

2.
Lojkowski M, Chlanda A, Choinska E, Swieszkowski W . Water vapor induced self-assembly of islands/honeycomb structure by secondary phase separation in polystyrene solution with bimodal molecular weight distribution. Sci Rep. 2021; 11(1):13299. PMC: 8225630. DOI: 10.1038/s41598-021-92594-1. View

3.
Qiu Y, Lee M, Chen J, Zhang Q . Effect of light intensity on solar-driven interfacial steam generation. Nanoscale. 2021; 13(48):20387-20395. DOI: 10.1039/d1nr06410j. View

4.
Pander A, Onishi T, Hatta A, Furuta H . Fabrication of Self-Assembling Carbon Nanotube Forest Fishnet Metamaterials. Nanomaterials (Basel). 2022; 12(3). PMC: 8838473. DOI: 10.3390/nano12030464. View

5.
Hong S, Shi Y, Li R, Zhang C, Jin Y, Wang P . Nature-Inspired, 3D Origami Solar Steam Generator toward Near Full Utilization of Solar Energy. ACS Appl Mater Interfaces. 2018; 10(34):28517-28524. DOI: 10.1021/acsami.8b07150. View