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DOI10.1016/j.cej.2022.135025
Photothermal trap with multi-scale micro-nano hierarchical structure enhances light absorption and promote photothermal anti-icing/deicing
Xie, Zhenting; Wang, Hong; Li, Meng; Tian, Ye; Deng, Qiyuan; Chen, Rong; Zhu, Xun; Liao, Qiang
发表日期2022
ISSN1385-8947
EISSN1873-3212
卷号435
英文摘要Facing climate change caused by carbon emissions and the disaster of ice accumulation on outdoor equipment, the large-scale use of solar energy is a promising solution. Here, a photothermal anti-icing material composed of substrate, carbon-based light-absorption layer, and encapsulation layer was prepared using a combined template-spraying method. The multi-scale micro-nano hierarchical structure can enhance light absorption in a limited space due to the light trapping effect, which was confirmed by ray-tracing simulation and the UV-vis-NIR light absorption result, and the average light absorption rate is up to -98% at the 200-2000 nm wavelength. The average surface temperature can reach -85 ?degrees C under 1 sun (q(i) = 100 mW/cm(2)) illumination at room temperature (T-r = 25 ?degrees C), and the photo-to-thermal conversion efficiency is up to 60.76%. Excellent photothermal conversion performance endows the material with the ability of photothermal deicing, and the frost or ice layer can melt and fall off from the surface after 300 s of 1 sun illumination. Besides, the photothermal anti-icing experiments under 1 sun illumination show that the prepared material has a lower freezing temperature (-25.20 & PLUSMN; 1.34 ?degrees C), a longer freezing delay time (774.76 & PLUSMN; 114.19 s), and a heat transfer model during the icing process was proposed. Surface friction, water flow impact, and solution immersion tests show that the material has excellent mechanical durability and chemical stability. The materials prepared in this work show enormous application potential on outdoor equipment due to the simple preparation method, strong mechanical durability, and excellent photothermal anti-icing/deicing properties.
英文关键词Carbon emission; Solar energy; Carbon -based photothermal materials; Anti-icing; Deicing; Heat transfer
语种英语
WOS研究方向Engineering, Environmental ; Engineering, Chemical
WOS类目Science Citation Index Expanded (SCI-EXPANDED)
WOS记录号WOS:000773585300001
来源期刊CHEMICAL ENGINEERING JOURNAL
文献类型期刊论文
条目标识符http://gcip.llas.ac.cn/handle/2XKMVOVA/281040
作者单位Chongqing University; Chongqing University; Chongqing University
推荐引用方式
GB/T 7714
Xie, Zhenting,Wang, Hong,Li, Meng,et al. Photothermal trap with multi-scale micro-nano hierarchical structure enhances light absorption and promote photothermal anti-icing/deicing[J],2022,435.
APA Xie, Zhenting.,Wang, Hong.,Li, Meng.,Tian, Ye.,Deng, Qiyuan.,...&Liao, Qiang.(2022).Photothermal trap with multi-scale micro-nano hierarchical structure enhances light absorption and promote photothermal anti-icing/deicing.CHEMICAL ENGINEERING JOURNAL,435.
MLA Xie, Zhenting,et al."Photothermal trap with multi-scale micro-nano hierarchical structure enhances light absorption and promote photothermal anti-icing/deicing".CHEMICAL ENGINEERING JOURNAL 435(2022).
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