Literature DB >> 33903253

Solar anti-icing surface with enhanced condensate self-removing at extreme environmental conditions.

Hongqiang Zhang1, Guanlei Zhao2,3, Shuwang Wu4, Yousif Alsaid4, Wenzheng Zhao3, Xiao Yan5, Lei Liu3, Guisheng Zou3, Jianyong Lv2, Ximin He6, Zhiyuan He7, Jianjun Wang2.   

Abstract

The inhibition of condensation freezing under extreme conditions (i.e., ultra-low temperature and high humidity) remains a daunting challenge in the field of anti-icing. As water vapor easily condensates or desublimates and melted water refreezes instantly, these cause significant performance decrease of most anti-icing surfaces at such extreme conditions. Herein, inspired by wheat leaves, an effective condensate self-removing solar anti-icing/frosting surface (CR-SAS) is fabricated using ultrafast pulsed laser deposition technology, which exhibits synergistic effects of enhanced condensate self-removal and efficient solar anti-icing. The superblack CR-SAS displays superior anti-reflection and photothermal conversion performance, benefiting from the light trapping effect in the micro/nano hierarchical structures and the thermoplasmonic effect of the iron oxide nanoparticles. Meanwhile, the CR-SAS displays superhydrophobicity to condensed water, which can be instantly shed off from the surface before freezing through self-propelled droplet jumping, thus leading to a continuously refreshed dry area available for sunlight absorption and photothermal conversion. Under one-sun illumination, the CR-SAS can be maintained ice free even under an ambient environment of -50 °C ultra-low temperature and extremely high humidity (ice supersaturation degree of ∼260). The excellent environmental versatility, mechanical durability, and material adaptability make CR-SAS a promising anti-icing candidate for broad practical applications even in harsh environments.

Entities:  

Keywords:  anti-icing; condensate self-removal; photothermal; surface micro-/nano-structuring; ultrafast pulsed laser deposition

Year:  2021        PMID: 33903253     DOI: 10.1073/pnas.2100978118

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  2 in total

Review 1.  Bio-inspired adhesion control with liquids.

Authors:  Yupeng Chen; Zhongpeng Zhu; Martin Steinhart; Stanislav N Gorb
Journal:  iScience       Date:  2022-02-04

2.  Improvements in Brazed-Joint Properties of Silicon Nitride and Titanium Alloys Using Laser-Induced Microscale Rice Leaf Structures.

Authors:  Jian-Guo He; Shou-Jun Dai; Yang Zhao; Min Huang; Yang Liu; Jia-Qi Yu; Yu Tan; Lian-Wen Fan; Wen-Qi Ge; Yun-Feng Ma
Journal:  Materials (Basel)       Date:  2022-09-29       Impact factor: 3.748

  2 in total

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