Issue 8, 2024

Bionic dual-scale structured films for efficient passive radiative cooling accompanied by robust durability

Abstract

Passive radiative cooling (PRC), as an energy-free cooling approach, is ingeniously harnessed for certain natural organisms to withstand extreme high-temperature climates, which has inspired numerous bionic designs. However, it is a great challenge to enhance the durability of the designed materials in practical scenarios while inheriting the natural biological principles. We demonstrate bionic dual-scale structured (BDSS) films for efficient passive radiative cooling accompanied by robust durability after discovering the excellent thermoregulatory properties of the inner surface of Hawaiian scallop shell. We found that the inner surface of the shell consists of large-scale triangular ridges scattered with small-scale terrace steps. This dual-scale structure can enhance the reflectivity of sunlight by efficient Mie scattering and increase the emissivity in the mid-infrared range by lengthening the propagation of photons, thereby decreasing the surface temperature. Underpinned by this finding, we developed a BDSS film that features a strong solar spectrum reflectivity of 0.95 and a high mid-infrared emissivity of 0.98, achieving a sub-ambient cooling of 10.8 °C under direct sunlight. Additionally, the designed films possess robust durability including excellent self-cleaning, flexibility, mechanical strength, chemical stability, and anti-ultraviolet radiation, which is promising for thermal thermoregulation in various harsh scenarios.

Graphical abstract: Bionic dual-scale structured films for efficient passive radiative cooling accompanied by robust durability

Supplementary files

Article information

Article type
Communication
Submitted
29 Mar 2024
Accepted
03 Jun 2024
First published
13 Jun 2024

Nanoscale Horiz., 2024,9, 1354-1363

Bionic dual-scale structured films for efficient passive radiative cooling accompanied by robust durability

R. Zhang, N. Sun, Z. Zhao, S. Wang, M. Zhang, L. Zhao, Y. Liu and S. Feng, Nanoscale Horiz., 2024, 9, 1354 DOI: 10.1039/D4NH00136B

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