TY - JOUR
T1 - A strategy of hierarchical particle-pore scattering in La-Al co-doped CaTiO3 ceramics for passive daytime radiative cooling
AU - Mustafa, Kamal
AU - Abro, Irfan Ali
AU - Zahra Rizvi, Syeda Muskan
AU - Raheel, Muhammad
AU - Mehmood, Saqib
AU - Nazeer, Faisal
AU - Gao, Lihong
AU - Zhu, Shizhen
AU - Ma, Zhuang
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/12
Y1 - 2026/12
N2 - Passive daytime radiative cooling (PDRC) has emerged as a promising electricity-free strategy for reducing building energy consumption. Most PDRC research focuses on tailoring optical properties, namely high ultraviolet–visible-near-infrared (UV–vis-NIR) reflectivity and high infrared emissivity (IRe); however, environmental heat gain remains a critical barrier to achieving stable sub-ambient cooling. Here, we report a La-Al co-doped CaTiO3 ceramic synthesized via a solid-state reaction combined with 36 h of ball milling and 1200 °C sintering. By prolonging the milling duration and moderating the sintering temperature, the hierarchical particle-pore microstructure with experimentally measured distributions was achieved, leading to enhanced Mie scattering, as confirmed by finite-difference time-domain (FDTD) simulations. As a result, the optimized ceramic material exhibits an ultrahigh average UV–vis-NIR reflectivity of 99% and a high atmospheric transparency window (ATW; 8–14 µm) infrared emissivity (IRe) of 0.97. In indoor/outdoor simulated solar irradiation of 700–1000 W/m2, the ceramic achieved a maximum temperature reduction of 7.7 °C with an average reduction of 7.2 and 6.8 °C and an average radiative cooling power of ∼ 103.56 and ∼ 97.53 W/m2. Moreover, the ceramic material demonstrates excellent chemical durability, maintaining stable performance under weather chamber and salt spray environments. This work presents a scalable, cost-effective route to high-performance PDRC ceramics, offering a robust solution for long-term, energy-efficient building-cooling applications.
AB - Passive daytime radiative cooling (PDRC) has emerged as a promising electricity-free strategy for reducing building energy consumption. Most PDRC research focuses on tailoring optical properties, namely high ultraviolet–visible-near-infrared (UV–vis-NIR) reflectivity and high infrared emissivity (IRe); however, environmental heat gain remains a critical barrier to achieving stable sub-ambient cooling. Here, we report a La-Al co-doped CaTiO3 ceramic synthesized via a solid-state reaction combined with 36 h of ball milling and 1200 °C sintering. By prolonging the milling duration and moderating the sintering temperature, the hierarchical particle-pore microstructure with experimentally measured distributions was achieved, leading to enhanced Mie scattering, as confirmed by finite-difference time-domain (FDTD) simulations. As a result, the optimized ceramic material exhibits an ultrahigh average UV–vis-NIR reflectivity of 99% and a high atmospheric transparency window (ATW; 8–14 µm) infrared emissivity (IRe) of 0.97. In indoor/outdoor simulated solar irradiation of 700–1000 W/m2, the ceramic achieved a maximum temperature reduction of 7.7 °C with an average reduction of 7.2 and 6.8 °C and an average radiative cooling power of ∼ 103.56 and ∼ 97.53 W/m2. Moreover, the ceramic material demonstrates excellent chemical durability, maintaining stable performance under weather chamber and salt spray environments. This work presents a scalable, cost-effective route to high-performance PDRC ceramics, offering a robust solution for long-term, energy-efficient building-cooling applications.
KW - Daytime radiative cooling
KW - Hierarchical Particle/pore size
KW - Infrared emissivity
KW - Mie scattering
KW - Optical simulation
KW - Solar reflectivity
UR - https://www.scopus.com/pages/publications/105045949103
U2 - 10.1016/j.optlastec.2026.116005
DO - 10.1016/j.optlastec.2026.116005
M3 - Article
AN - SCOPUS:105045949103
SN - 0030-3992
VL - 204
JO - Optics and Laser Technology
JF - Optics and Laser Technology
M1 - 116005
ER -