Oxygen‐Terminated Polycrystalline Boron‐Doped Diamond Superhydrophobic Surface with Excellent Mechanical and Thermal Stabilities

Author:

Wang Peng1,Wang Tianyi1,Yang Mingchao2,Wang Qiliang1,Yuan Xiaoxi3,Cui Zheng1,Gao Nan1,Liu Junsong1,Cheng Shaoheng1,Jiang Zhigang1,Jin Huichao4ORCID,Li Hongdong1

Affiliation:

1. State Key Laboratory of Superhard Materials Jilin University Changchun 130012 China

2. College of Physical Science and Technology Hebei Normal University of Science & Technology Qinhuangdao 066000 China

3. Institute for Interdisciplinary Quantum Information Technology Jilin Engineering Normal University Changchun 130052 China

4. Key Laboratory of Bionic Engineering Ministry of Education Jilin University Changchun 130022 China

Abstract

AbstractSuperhydrophobic surfaces are of great interest because of their remarkable properties. Due to its maximal hardness and chemical inertness, diamond film has great potential in fabricating robust superhydrophobic surfaces. In the present study, an oxygen‐terminated polycrystalline boron‐doped diamond (O‐PBDD) superhydrophobic surface with micro/nano‐hierarchical porous structures is developed. The preparation method is very simple, requiring only sputtering and dewetting procedures. The former involves sputtering gold and copper particles onto the hydrogen‐terminated polycrystalline boron‐doped diamond (H‐PBDD) to form gold/copper films, whereas the latter involves placing the samples in an atmospheric tube furnace to form hierarchical pores. By controlling the etching parameters, the wettability of the O‐PBDD surface can be adjusted from hydrophilic to superhydrophobic, which is significantly different to the normal hydrophilicity feature of O‐termination diamonds. The water contact angle of the obtained O‐PBDD surface can reach 165 ± 5°, which is higher than the superhydrophobic diamond surfaces that are reported in the literature. In addition, the O‐PBDD surface exhibits excellent durability; it can maintain satisfactory superhydrophobicity even after high‐pressure, high‐temperature, and sandpaper friction tests. This work provides a new research direction for fabricating robust superhydrophobic materials with diamond film.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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