Photothermal Utility Heating with Diffused Indoor Light via Multiple Transparent Fe3O4@Cu2−xS Thin Films

Author:

Katepalli Anudeep1,Tene Neshwanth Kumar1,Wang Yuxin1,Harfmann Anton2,Bonmarin Mathias3,Krupczak John4,Shi Donglu1ORCID

Affiliation:

1. Materials Science and Engineering Program Department of Mechanical and Materials Engineering College of Engineering and Applied Science University of Cincinnati Cincinnati OH 45221 USA

2. College of Design, Architecture, Art and Planning University of Cincinnati Cincinnati OH 45221 USA

3. School of Engineering Zurich University of Applied Sciences 8400 Winterthur Switzerland

4. Department of Engineering Hope College Holland MI 49423 USA

Abstract

By introducing a novel photothermal radiator that effectively harnesses diffused light through plasmonic Fe3O4@Cu2−xS nanoparticles, it is sought to offer a sustainable solution for maintaining comfortable indoor temperatures without heavy reliance on traditional solar sources. The approach involves the use of ultraviolet (UV) and infrared (IR) lights to photothermally activate transparent Fe3O4@Cu2−xS thin films, showcasing a proactive strategy to optimize energy capture even in low‐light scenarios such as cloudy days or nighttime hours. This innovative technology carries immense potential for energy‐neutral buildings, paving the way to reduce dependence on external energy grids and promoting a more sustainable future for indoor heating and comfort control. The developed photothermal radiator incorporates multiple transparent thin films infused with plasmonic Fe3O4@Cu2−xS nanoparticles, known for their robust UV and IR absorptions driven by localized surface plasmon resonance. Through the application of UV and IR lights, these thin films efficiently convert incident photons into thermal energy. The experiments within a specially constructed diffused light photothermal box, designed to simulate indoor environments, demonstrate the system's capability to raise temperatures above 50 °C effectively. This pioneering photothermal radiator offers a promising pathway for sustainable heat generation in indoor spaces, harnessing ubiquitous diffused light sources to enhance energy efficiency.

Funder

Directorate for Engineering

Publisher

Wiley

Reference35 articles.

1. U.S. Energy Information Administration (EIA) Consumption and Efficiency https://www.eia.gov/consumption/(accessed: October 2020).

2. Alternative energy technologies

3. Photovoltaic Materials

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