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Highly Efficient Photothermal Icephobic/de-Icing MOF-Based Micro and Nanostructured Surface. | LitMetric

Highly Efficient Photothermal Icephobic/de-Icing MOF-Based Micro and Nanostructured Surface.

Adv Sci (Weinh)

Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University (BUAA), Beijing, 100191, P. R. China.

Published: December 2023

AI Article Synopsis

  • Photothermal materials are being explored for their eco-friendly and energy-saving properties in anti-/de-icing applications, but creating effective materials with complex structures is challenging.
  • A novel MOF-based micro and nanostructured surface (MOF-MNS) demonstrates over 98% solar absorption and can raise temperatures by 65.5°C under sunlight, along with an impressive icing delay time of about 3960 seconds at -18°C without sunlight.
  • The MOF-MNS not only melts accumulated ice and frost quickly (within 720 seconds under sunlight) but is also durable and stable, making it suitable for tough environments.

Article Abstract

Photothermal materials have gained considerable attention in the field of anti-/de-icing due to its environmental friendliness and energy saving. However, it is always significantly challenging to obtain solar thermal materials with hierarchical structure and simultaneously demonstrate both the ultra-long icing delay ability and the superior photothermal de-icing ability. Here, a photothermal icephobic MOF-based micro and nanostructure surface (MOF-MNS) is presented, which consists of micron groove structure and fluorinated MOF nanowhiskers. The optimal MOF-M NS can achieve solar absorption of over 98% and produce a high temperature increment of 65.5 °C under 1-sun illumination. Such superior photothermal-conversion mechanism of MOF-M NS is elucidated in depth. In addition, the MOF-M NS generates an ultra-long icing delay time of ≈3960 s at -18 °C without solar illumination, achieving the longest delay time, which isn't reported before. Due to its excellent solar-to-heat conversation ability, accumulated ice and frost on MOF-M NS can be rapidly melted within 720 s under 1-sun illumination and it also holds a high de-icing rate of 5.8 kg m h . MOF-M NS possesses the versatility of mechanical robustness, chemical stability, and low temperature self-cleaning, which can synergistically reinforce the usage of icephobic surfaces in harsh conditions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10700197PMC
http://dx.doi.org/10.1002/advs.202304187DOI Listing

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