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具有各向异性热导率的高度取向多孔纳米复合气凝胶用于亚环境和超环境辐射冷却

Highly Aligned Porous Nanocomposite Aerogels with Anisotropic Thermal Conductivity for Sub-Ambient and Above-Ambient Radiative Cooling.

作者信息

Xu Fankun, Zhu Tianyi, Wang Yufeng, Ji Baiyu, Zhao Yongxu, Miao Yue-E, Zhang Chao

机构信息

State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.

出版信息

Small. 2025 Jun;21(25):e2503789. doi: 10.1002/smll.202503789. Epub 2025 Apr 26.

DOI:10.1002/smll.202503789
PMID:40285571
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.

摘要

具有隔热和太阳散射特性的可扩展且经济高效的多孔结构材料,作为在阳光照射和高温下对物体进行零能耗热调节的辐射冷却解决方案具有巨大潜力。然而,其固有的隔热性能限制了它们有效散发过多内部热量的能力,从而限制了它们在高于环境温度的封闭环境中的冷却场景中的适用性。在此,提出了一种定向冷冻铸造策略来制备高度取向的多孔纳米复合气凝胶。这种气凝胶的热各向异性因子为3.48,表明由于取向骨架壁的双重取向和导热纳米片的空间受限排列,其轴向热导率显著提高。通过分级孔结构的设计和嵌入的二维纳米片的后向散射特性,这种气凝胶在轴向方向上还表现出95.3%的高太阳反射率。因此,这种气凝胶作为多场景辐射冷却器有效地发挥作用,对于暴露在阳光和高温下的低于环境温度和高于环境温度的封闭环境,分别实现了3.3和15.9℃的降温。这项研究显著扩展了多孔结构材料在多场景辐射冷却中的适用性,解决了传统多孔材料在冷却发热封闭环境中的局限性。

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