Self‐Oxidation Resistance of the Curved Surface of Achromatic Copper

Author:

Kim Young‐Hoon1,Kim Seong‐Gon2,Lee Seunghun3,Cheon Miyeon4,Kim Su Jae4,Nam Kideuk3,Lamichhane Bipin2,Park Sung Heum3,Jung Min‐Hyoung1,Kim Ji‐Soo5,Seo Yu‐Seong6,Ha Taewoo7,Hwang Jungseek6,Jeong Hu Young8,Lee Yusil4,Lee Young Hee7ORCID,Kim Young‐Min17ORCID,Jeong Se‐Young9ORCID

Affiliation:

1. Department of Energy Science Sungkyunkwan University (SKKU) Suwon 16419 Republic of Korea

2. Department of Physics and Astronomy Mississippi State University Starkville MS 39762 USA

3. Department of Physics Pukyong National University Busan 48513 Republic of Korea

4. Crystal Bank Research Institute Pusan National University Busan 46241 Republic of Korea

5. Gumi Electronics and Information Technology Research Institute (GERI) Gumi 39171 Republic of Korea

6. Department of Physics Sungkyunkwan University (SKKU) Suwon 16419 Republic of Korea

7. Center for Integrated Nanostructure Physics (CINAP) Institute for Basic Science Suwon 16419 Republic of Korea

8. Graduate School of Semiconductor Materials and Devices Engineering Ulsan National Institute of Science and Technology (UNIST) Ulsan 44919 Republic of Korea

9. Department of Optics and Mechatronics Engineering Department of Cogno‐Mechatronics Engineering Pusan National University Busan 46241 Republic of Korea

Abstract

AbstractCopper surfaces that exhibit a wide range of achromatic colors while still metallic have not been studied, despite advancements in antireflection coatings. A series of achromatic copper films grown with [111] preferred orientation by depositing 3D porous nanostructures is introduced via coherent/incoherent atomic sputtering epitaxy. The porous copper nanostructures self‐regulate the giant oxidation resistance by constructing a curved surface that generates a series of monoatomic steps, followed by shrinkage of the lattice spacing of one or two surface layers. First‐principles calculations confirm that these structural components cooperatively increase the energy barrier against oxygen penetration. The achromaticity of the single‐crystalline porous copper films is systematically tuned by geometrical parameters such as pore size distribution and 3D linkage. The optimized achromatic copper films with high oxidation resistance show an unusual switching effect between superhydrophilicity and superhydrophobicity. The tailored 3D porous nanostructures can be a candidate material for numerous applications, such as antireflection coatings, microfluidic devices, droplet tweezers, and reversible wettability switches.

Funder

National Research Foundation of Korea

Institute for Basic Science

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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