252
Views
4
CrossRef citations to date
0
Altmetric
Research Article

Hierarchical Cu2O/CuO/TiO2 composite films with high superhydrophobicity and strong adhesion

, , &
Pages 1223-1230 | Received 07 Aug 2020, Accepted 05 Jan 2021, Published online: 22 Jan 2021
 

ABSTRACT

Hierarchical Cu2O/CuO/TiO2 hollow nanostructured films with petal effect (high superhydrophobicity and high adhesion to water droplets) have been synthesized through a facile solvothermal approach, and the wettability of the product films was studied. The protocol was carefully designed for the preparation of the multi-scaled nanostructures. Cu(OH)2 nanorod arrays were used as precursors, which decomposed to form CuO and H2O molecules at high temperature. The produced tiny amount of water molecules was beneficial for both the slow hydrolysis of Ti(OC4H9)4 to formTiO2 nanostructures and the reduction of CuO to form Cu2O. The formation of hollow nanostructures is suggested to be based on kirkendall effect. CuO diffuses outward to react with ethanol in the solution, producing Cu2O/CuO/TiO2 hollow nanostructured films with rough surfaces. The water contact angle of the product film was estimated to be around 152.8°, and the water droplet remained firmly stuck on the surface when the film was vertically tilted, indicating the superhydrophobicity and strong adhesion of the product films. The Cassie impregnating wetting state was suggested as the wetting state of the product films.

Acknowledgements

The authors would like to gratefully acknowledge the financial support from the National Natural Science Foundation of China [NSFC Grant 51502182], Material Corrosion and Protection key Labratory of Sichuan Province [2020CL20], Sichuan University of Science and Engineering [2020RC13, 2020RC40] and Key Laboratories of Fine Chemicals and Surfactants in Sichuan Provincial Universities [2020JXY02].

Disclosure statement

No potential conflict of interest was reported by the author(s).

Additional information

Funding

The authors would like to gratefully acknowledge the financial support from the National Natural Science Foundation of China [NSFC Grant 51502182], Material Corrosion and Protection Key Labratory of Sichuan Province [2020CL20], Sichuan University of Science and Engineering [2020RC13, 2020RC40] and Key Laboratories of Fine Chemicals and Surfactants in Sichuan Provincial Universities [2020JXY02]

Log in via your institution

Log in to Taylor & Francis Online

There are no offers available at the current time.

Related Research

People also read lists articles that other readers of this article have read.

Recommended articles lists articles that we recommend and is powered by our AI driven recommendation engine.

Cited by lists all citing articles based on Crossref citations.
Articles with the Crossref icon will open in a new tab.