Transparent Sol–Gel-Based Coatings Reflecting Heat Radiation in the Near Infrared

Author:

Mayer-Gall Thomas12ORCID,Kamps Leonie1,Straube Thomas3,Gutmann Jochen S.12ORCID,Textor Torsten45ORCID

Affiliation:

1. Deutsches Textilforschungszentrum Nord-West gGmbH, 47798 Krefeld, Germany

2. Center of Nanointegration Duisburg-Essen, University of Duisburg-Essen, 47057 Duisburg, Germany

3. Mehler Texnologies—Freudenberg Performance Materials, 41836 Hückelhoven, Germany

4. TEXOVERSUM School of Textiles, Reutlingen University, Alteburg Str. 150, 72762 Reutlingen, Germany

5. RRI—Reutlingen Research Institute, Reutlingen University, 72762 Reutlingen, Germany

Abstract

Thin, flat textile roofing offers negligible heat insulation. In warm areas, such roofing membranes are therefore equipped with metallized surfaces to reflect solar heat radiation, thus reducing the warming inside a textile building. Heat reflection effects achieved by metallic coatings are always accompanied by shading effects as the metals are non-transparent for visible light (VIS). Transparent conductive oxides (TCOs) are transparent for VIS and are able to reflect heat radiation in the infrared. TCOs are, e.g., widely used in the display industry. To achieve the perfect coatings needed for electronic devices, these are commonly applied using costly vacuum processes at high temperatures. Vacuum processes, on account of the high costs involved and high processing temperatures, are obstructive for an application involving textiles. Accepting that heat-reflecting textile membranes demand less perfect coatings, a wet chemical approach has been followed here when producing transparent heat-reflecting coatings. Commercially available TCOs were employed as colloidal dispersions or nanopowders to prepare sol–gel-based coating systems. Such coatings were applied to textile membranes as used for architectural textiles using simple coating techniques and at moderate curing temperatures not exceeding 130 °C. The coatings achieved about 90% transmission in the VIS spectrum and reduced near-infrared transmission (at about 2.5 µm) to nearly zero while reflecting up to 25% of that radiation. Up to 35% reflection has been realized in the far infrared, and emissivity values down to ε = 0.5777 have been measured.

Funder

Federal Ministry for Economic Affairs and Energy and the German Federation of Industrial Research Associations eV

Publisher

MDPI AG

Subject

Polymers and Plastics,Organic Chemistry,Biomaterials,Bioengineering

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