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Bioinspired Multifunctional Superhydrophobic Surfaces with Carbon-Nanotube-Based Conducting Pastes by Facile and Scalable Printing. | LitMetric

AI Article Synopsis

  • Superhydrophobic surfaces with conducting nanomaterials can be created using a simple screen printing method featuring carbon nanotube-based pastes, allowing for various applications like nonwetting and electrical conductivity.
  • The addition of a PDMS-PEG copolymer to the conducting paste enhances both the printability and hydrophobicity of the printed surfaces, achieving water contact angles greater than 150° and low contact angle hysteresis.
  • These surfaces also exhibit sticky characteristics to transport droplets, serve as filters for oil/water separation, and can be used to study liquid evaporation in conductive thin-film heaters.

Article Abstract

Directly printed superhydrophobic surfaces containing conducting nanomaterials can be used for a wide range of applications in terms of nonwetting, anisotropic wetting, and electrical conductivity. Here, we demonstrated that direct-printable and flexible superhydrophobic surfaces were fabricated on flexible substrates via with an ultrafacile and scalable screen printing with carbon nanotube (CNT)-based conducting pastes. A polydimethylsiloxane (PDMS)-polyethylene glycol (PEG) copolymer was used as an additive for conducting pastes to realize the printability of the conducting paste as well as the hydrophobicity of the printed surface. The screen-printed conducting surfaces showed a high water contact angle (WCA) (>150°) and low contact angle hysteresis (WCA < 5°) at 25 wt % PDMS-PEG copolymer in the paste, and they have an electrical conductivity of over 1000 S m. Patterned superhydrophobic surfaces also showed sticky superhydrophobic characteristics and were used to transport water droplets. Moreover, fabricated films on metal meshes were used for an oil/water separation filter, and liquid evaporation behavior was investigated on the superhydrophobic and conductive thin-film heaters by applying direct current voltage to the film.

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Source
http://dx.doi.org/10.1021/acsami.6b15292DOI Listing

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