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一种用于全天候热电发电的三模式光热、相变和辐射冷却薄膜。

A Tri-Mode Photothermal, Phase-Change, and Radiative-Cooling Film for All-Day Thermoelectric Generation.

作者信息

Hou Mingtai, Chen Hao, Li Song, Zhang Xinru, Chen Jie, Jiang Zeyi, Wang Cunhai, Lai Nien-Chu, Ding Yulong

机构信息

School of Energy and Environmental Engineering, University of Science and Technology Beijing, Beijing, 100083, China.

Key Laboratory of Thermo-Fluid Science and Engineering, Ministry of Education, Xi'an Jiaotong University, Xi'an, 710049, China.

出版信息

Adv Mater. 2025 Jul 7:e2505601. doi: 10.1002/adma.202505601.

Abstract

Solar-thermal-electric conversion shows great promise, especially in off-grid aerospace and navigation. However, low output density and intermittency of solar energy limit its application. Herein, a microencapsulated phase change material (MPCMs) is designed with a n-Tetracosane core and TiO/TiO composite shell to address the above issue. The MPCM exhibits a latent heat of 144.5 J g, a photothermal conversion efficiency of 93.7% and 100% energy storage capacity. The thermoelectric system resulting from coupling the multifunctional film composed of polydimethylsiloxane and MPCMs with the thermoelectric module is capable of successfully achieving adaptive 24 h uninterrupted power generation on account of its functions of photothermal conversion, energy storage, and radiative cooling. The output power density of the TES ranged from 6.1 to 21.1 W m at light intensities of 1000-5000 W m. The material design innovatively endows a single material with the functions of photothermal conversion, phase change energy storage, and radiative cooling, making it can adaptively harvest energy from both the sun and cold space. This multifunctional material offers new insights into the repeatable storage and high-quality utilization of solar energy, holding significant scientific implications for the development of all-day solar-thermal-electric power generation technology.

摘要

太阳能-热电转换展现出巨大潜力,尤其是在离网航空航天和导航领域。然而,太阳能的低输出密度和间歇性限制了其应用。在此,设计了一种以正二十四烷为核心、TiO/TiO复合壳层的微胶囊相变材料(MPCMs)来解决上述问题。该MPCM的潜热为144.5 J g,光热转换效率为93.7%,储能容量为100%。由聚二甲基硅氧烷和MPCMs组成的多功能薄膜与热电模块耦合而成的热电系统,由于其光热转换、储能和辐射冷却功能,能够成功实现24小时自适应不间断发电。在1000 - 5000 W m的光强下,该热电系统的输出功率密度范围为6.1至21.1 W m。这种材料设计创新地赋予了单一材料光热转换、相变储能和辐射冷却功能,使其能够从太阳和冷空间自适应地收集能量。这种多功能材料为太阳能的可重复存储和高质量利用提供了新的见解,对全天候太阳能-热电发电技术的发展具有重要的科学意义。

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