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Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses

Both surface microstructure and low surface energy modification play a vital role in the preparation of superhydrophobic surfaces. In this study, a safe and simple electrochemical method was developed to fabricate superhydrophobic surfaces of Zr-based metallic glasses with high corrosion resistance....

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Autores principales: Yu, Mengmeng, Zhang, Ming, Sun, Jing, Liu, Feng, Wang, Yujia, Ding, Guanzhong, Xie, Xiubo, Liu, Li, Zhao, Xiangjin, Li, Haihong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8000747/
https://www.ncbi.nlm.nih.gov/pubmed/33809070
http://dx.doi.org/10.3390/molecules26061558
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author Yu, Mengmeng
Zhang, Ming
Sun, Jing
Liu, Feng
Wang, Yujia
Ding, Guanzhong
Xie, Xiubo
Liu, Li
Zhao, Xiangjin
Li, Haihong
author_facet Yu, Mengmeng
Zhang, Ming
Sun, Jing
Liu, Feng
Wang, Yujia
Ding, Guanzhong
Xie, Xiubo
Liu, Li
Zhao, Xiangjin
Li, Haihong
author_sort Yu, Mengmeng
collection PubMed
description Both surface microstructure and low surface energy modification play a vital role in the preparation of superhydrophobic surfaces. In this study, a safe and simple electrochemical method was developed to fabricate superhydrophobic surfaces of Zr-based metallic glasses with high corrosion resistance. First, micro–nano composite structures were generated on the surface of Zr-based metallic glasses by electrochemical etching in NaCl solution. Next, stearic acid was used to decrease surface energy. The effects of electrochemical etching time on surface morphology and wettability were also investigated through scanning electron microscopy and contact angle measurements. Furthermore, the influence of micro–nano composite structures and roughness on the wettability of Zr-based metallic glasses was analysed on the basis of the Cassie–Baxter model. The water contact angle of the surface was 154.3° ± 2.2°, and the sliding angle was <5°, indicating good superhydrophobicity. Moreover, the potentiodynamic polarisation test and electrochemical impedance spectroscopy suggested excellent corrosion resistance performance, and the inhibition efficiency of the superhydrophobic surface reached 99.6%. Finally, the prepared superhydrophobic surface revealed excellent temperature-resistant and self-cleaning properties.
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spelling pubmed-80007472021-03-28 Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses Yu, Mengmeng Zhang, Ming Sun, Jing Liu, Feng Wang, Yujia Ding, Guanzhong Xie, Xiubo Liu, Li Zhao, Xiangjin Li, Haihong Molecules Article Both surface microstructure and low surface energy modification play a vital role in the preparation of superhydrophobic surfaces. In this study, a safe and simple electrochemical method was developed to fabricate superhydrophobic surfaces of Zr-based metallic glasses with high corrosion resistance. First, micro–nano composite structures were generated on the surface of Zr-based metallic glasses by electrochemical etching in NaCl solution. Next, stearic acid was used to decrease surface energy. The effects of electrochemical etching time on surface morphology and wettability were also investigated through scanning electron microscopy and contact angle measurements. Furthermore, the influence of micro–nano composite structures and roughness on the wettability of Zr-based metallic glasses was analysed on the basis of the Cassie–Baxter model. The water contact angle of the surface was 154.3° ± 2.2°, and the sliding angle was <5°, indicating good superhydrophobicity. Moreover, the potentiodynamic polarisation test and electrochemical impedance spectroscopy suggested excellent corrosion resistance performance, and the inhibition efficiency of the superhydrophobic surface reached 99.6%. Finally, the prepared superhydrophobic surface revealed excellent temperature-resistant and self-cleaning properties. MDPI 2021-03-12 /pmc/articles/PMC8000747/ /pubmed/33809070 http://dx.doi.org/10.3390/molecules26061558 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yu, Mengmeng
Zhang, Ming
Sun, Jing
Liu, Feng
Wang, Yujia
Ding, Guanzhong
Xie, Xiubo
Liu, Li
Zhao, Xiangjin
Li, Haihong
Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses
title Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses
title_full Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses
title_fullStr Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses
title_full_unstemmed Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses
title_short Facile Electrochemical Method for the Fabrication of Stable Corrosion-Resistant Superhydrophobic Surfaces on Zr-Based Bulk Metallic Glasses
title_sort facile electrochemical method for the fabrication of stable corrosion-resistant superhydrophobic surfaces on zr-based bulk metallic glasses
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8000747/
https://www.ncbi.nlm.nih.gov/pubmed/33809070
http://dx.doi.org/10.3390/molecules26061558
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