Journal Article10.1515/nanoph-2023-0580
Transparent energy-saving windows based on broadband directional thermal emission
Minyeol Bae,Do Hyeon Kim,Sun-Kyung Kim,Young-Min Song +3 more
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TL;DR: Transparent energy-saving windows based on broadband directional thermal emission enhance space-cooling performance through angular selective emission and high visible transmittance.
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Abstract: Abstract Passive radiative cooling has emerged as a sustainable energy-saving solution, characterized by its energy-free operation and absence of carbon emissions. Conventional radiative coolers are designed with a skyward orientation, allowing for efficient heat dissipation to the cold heat sink. However, this design feature presents challenges when installed on vertical surfaces, as nearby objects obstruct heat release by blocking the cooler’s skyward view. Here, we introduce a directional radiative cooling glass (DRCG) designed to facilitate efficient heat dissipation through angular selective emission. The DRCG is constructed as a multilayer structure incorporating epsilon-near-zero materials, specifically Si3N4 and Al2O3, layered on an indium-tin-oxide thermal reflector. This innovative design restricts thermal emission to specific angular ranges, known as the Berreman mode. Additionally, the transparent layers enable a visible transmittance exceeding 84 %. Theoretical simulations validate the enhanced cooling performance of the DRCG, exhibiting a temperature reduction of over 1.5 °C compared with conventional glass in hot urban environments characterized by a nearby object temperature exceeding 60 °C and a sky view factor of 0.25. Furthermore, outdoor experiments demonstrate that employing the DRCG as a window enhances space-cooling performance by ∼1.5 °C. These findings underscore the potential of transparent energy-saving windows in mitigating the urban heat island effect.
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Citations
Ultrahigh Visible-Transparency, Submicrometer, and Polymer-Free Radiative Cooling Meta-Glass Coating for Building Energy Saving
Shilv Yu,Jae Seon Yu,Zihe Chen,Qinghe Li,Zhaochen Wang,Xiaobing Luo,Sun‐Kyung Kim,Run Hu +7 more
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Local reference solar visible spectrum for high daylighting quality
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Thermal photonics for sustainability
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Microstructured optical coatings for climate crisis mitigation
Geon-Tae Park,Jin-Woo Cho,Hyung Rae Kim,Qiaoqiang Gan,Young-Min Song,Sun-Kyung Kim +5 more
TL;DR: This review examines microstructured optical coatings for climate crisis mitigation, highlighting their role in energy harvesting and saving through improved sunlight steering, passive radiative cooling, and scalable fabrication techniques for large-area applications.
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