{"title":"Highly Aligned Porous Nanocomposite Aerogels with Anisotropic Thermal Conductivity for Sub‐Ambient and Above‐Ambient Radiative Cooling","authors":"Fankun Xu, Tianyi Zhu, Yufeng Wang, Baiyu Ji, Yongxu Zhao, Yue‐E Miao, Chao Zhang","doi":"10.1002/smll.202503789","DOIUrl":null,"url":null,"abstract":"Scalable and cost‐efficient porous structural materials, characterized by their thermal insulation and solar scattering properties, hold significant promise as radiative cooling solutions for zero‐energy thermal regulation of objects subjected to sunlight and high temperatures. However, the intrinsic thermal insulation restricts their capacity to effectively dissipate excess internal heat, thereby limiting their applicability in cooling scenarios within above‐ambient enclosed environments. Herein, a directional freeze‐casting strategy is presented for preparing a highly aligned porous nanocomposite aerogel. This aerogel demonstrates a thermal anisotropy factor of 3.48, indicating a markedly enhanced thermal conductivity in the axial direction ascribing to the dual orientation of the aligned skeletal walls and the space‐confined arrangement of thermally conductive nanosheets. This aerogel also demonstrates a high solar reflectance of 95.3% in the axial direction facilitated by the design of hierarchical pore structures and the backscattering properties of the embedded 2D nanosheets. Consequently, this aerogel functions effectively as a multi‐scenario radiative cooler, achieving temperature reductions of 3.3 and 15.9 °C for cooling sub‐ambient and above‐ambient enclosed environments exposed to sunlight and high temperatures. This study significantly expands the applicability of porous structural materials in multi‐scenario radiative cooling, addressing the limitations of conventional porous materials in cooling heat‐generating enclosed environments.","PeriodicalId":228,"journal":{"name":"Small","volume":"14 1","pages":""},"PeriodicalIF":13.0000,"publicationDate":"2025-04-26","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Small","FirstCategoryId":"88","ListUrlMain":"https://doi.org/10.1002/smll.202503789","RegionNum":2,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
Highly Aligned Porous Nanocomposite Aerogels with Anisotropic Thermal Conductivity for Sub‐Ambient and Above‐Ambient Radiative Cooling
Scalable and cost‐efficient porous structural materials, characterized by their thermal insulation and solar scattering properties, hold significant promise as radiative cooling solutions for zero‐energy thermal regulation of objects subjected to sunlight and high temperatures. However, the intrinsic thermal insulation restricts their capacity to effectively dissipate excess internal heat, thereby limiting their applicability in cooling scenarios within above‐ambient enclosed environments. Herein, a directional freeze‐casting strategy is presented for preparing a highly aligned porous nanocomposite aerogel. This aerogel demonstrates a thermal anisotropy factor of 3.48, indicating a markedly enhanced thermal conductivity in the axial direction ascribing to the dual orientation of the aligned skeletal walls and the space‐confined arrangement of thermally conductive nanosheets. This aerogel also demonstrates a high solar reflectance of 95.3% in the axial direction facilitated by the design of hierarchical pore structures and the backscattering properties of the embedded 2D nanosheets. Consequently, this aerogel functions effectively as a multi‐scenario radiative cooler, achieving temperature reductions of 3.3 and 15.9 °C for cooling sub‐ambient and above‐ambient enclosed environments exposed to sunlight and high temperatures. This study significantly expands the applicability of porous structural materials in multi‐scenario radiative cooling, addressing the limitations of conventional porous materials in cooling heat‐generating enclosed environments.
期刊介绍:
Small serves as an exceptional platform for both experimental and theoretical studies in fundamental and applied interdisciplinary research at the nano- and microscale. The journal offers a compelling mix of peer-reviewed Research Articles, Reviews, Perspectives, and Comments.
With a remarkable 2022 Journal Impact Factor of 13.3 (Journal Citation Reports from Clarivate Analytics, 2023), Small remains among the top multidisciplinary journals, covering a wide range of topics at the interface of materials science, chemistry, physics, engineering, medicine, and biology.
Small's readership includes biochemists, biologists, biomedical scientists, chemists, engineers, information technologists, materials scientists, physicists, and theoreticians alike.