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Article

Metal Surface Treatments for Enhanced Heat Transfer in Metal–Composite Hybrid Structures

Department of Advanced Materials Engineering for Information and Electronics, Integrated Education Institute for Frontier Science and Technology (BK21 Four), Kyung Hee University, Yongin-si 17104, Republic of Korea
*
Author to whom correspondence should be addressed.
These authors contributed equally to this work.
Micromachines 2025, 16(4), 399; https://doi.org/10.3390/mi16040399
Submission received: 27 February 2025 / Revised: 23 March 2025 / Accepted: 26 March 2025 / Published: 29 March 2025
(This article belongs to the Special Issue Micro/Nano Manufacturing of Electronic Devices)

Abstract

Recently, there has been an increasing emphasis on improving the performance of metal components across various industries, such as automotive, aerospace, electronics, medical devices, and military applications. However, the challenges related to efficient heat generation and transfer in equipment and devices are becoming increasingly critical. A solution to these issues involves the adoption of a metal–composite hybrid structure, designed to efficiently manage heat, while substituting conventional metal components with polymer–carbon composites. In this study, nanopores were formed on the metal surface using an anodization process, serving as the basis for creating 3D-printed polymer/metal hybrid constructions. Various surface treatments, including plasma treatment, mixed electrolyte anodization, and etching, were applied to the metal surface to enhance the bonding strength between the 3D-printed polymer and the aluminum alloy. These processes were essential for developing lightweight polymer/metal hybrid structures utilizing a range of 3D-printed polymer filaments, such as polylactic acid, thermoplastic polyurethane, acrylonitrile butadiene styrene, polypropylene, thermoplastic polyester elastomer, and composite materials composed of polymer and carbon. In particular, the hybrid structures employing polymer–carbon composite materials demonstrated excellent heat dissipation characteristics, attributed to the remarkable conductive properties of carbon fibers. These technologies have the potential to effectively address the device heat problem by facilitating the development of lightweight hybrid structures applicable across various fields, including automotive, mobile electronics, medical devices, and military applications.
Keywords: metal–polymer hybrid structures; heat dissipation; 3D printing; carbon composites; surface treatment techniques metal–polymer hybrid structures; heat dissipation; 3D printing; carbon composites; surface treatment techniques

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MDPI and ACS Style

Kim, D.H.; Lee, W.; Park, J.B.; Lee, J.U. Metal Surface Treatments for Enhanced Heat Transfer in Metal–Composite Hybrid Structures. Micromachines 2025, 16, 399. https://doi.org/10.3390/mi16040399

AMA Style

Kim DH, Lee W, Park JB, Lee JU. Metal Surface Treatments for Enhanced Heat Transfer in Metal–Composite Hybrid Structures. Micromachines. 2025; 16(4):399. https://doi.org/10.3390/mi16040399

Chicago/Turabian Style

Kim, Dong Hyun, Wonhwa Lee, Jung Bin Park, and Jea Uk Lee. 2025. "Metal Surface Treatments for Enhanced Heat Transfer in Metal–Composite Hybrid Structures" Micromachines 16, no. 4: 399. https://doi.org/10.3390/mi16040399

APA Style

Kim, D. H., Lee, W., Park, J. B., & Lee, J. U. (2025). Metal Surface Treatments for Enhanced Heat Transfer in Metal–Composite Hybrid Structures. Micromachines, 16(4), 399. https://doi.org/10.3390/mi16040399

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