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April 8, 2026ACS Applied Materials & Interfaces0 citations

Constructing a Hydrophobic Composite Surface for Anisotropic Conductive Films with Durable Electronic Interconnections

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GZGuoxiang ZhangWZWei ZhaoJWJunhui Wei

Key Points

  • This research aims to develop a hydrophobic anisotropic conductive film to improve the long-term reliability of electronic interconnections.
  • Engineered hydrophobic composite surface with core-shell structured hydrophobic alumina nanoparticles.
  • Evaluated water contact angle, bonding strength, and electrical conductivity of the films.
  • Assessed durability through abrasion cycles and hygrothermal aging tests.
  • Achieved a water contact angle of 157.06° indicating strong hydrophobicity.
  • Demonstrated a bonding strength of 26.12 MPa, suggesting robust interfacial connections.
  • Showed only a 59% increase in resistance after hygrothermal aging, compared to 228% for conventional films.

Abstract

The long-term reliability of epoxy-based anisotropic conductive films (ACFs) is limited by moisture-induced degradation arising from the hydrophilic nature of epoxy matrices. In this work, an intrinsically hydrophobic anisotropic conductive film (H-ACF) is developed by engineering the hydrophobic composite surface through the incorporation of core-shell structured hydrophobic alumina (H-Al2O3) nanoparticles into the epoxy surface. The fluorinated polysiloxane shell forms covalent Al-O-Si linkages with the alumina core, creating a durable low-surface-energy composite that simultaneously imparts micro/nanoscale hierarchical roughness and strong interfacial bonding. The optimized H-ACF exhibits exceptional hydrophobicity (water contact angle = 157.06°), high bonding strength (26.12 MPa), and enhanced electrical conductivity. It maintains the hydrophobic performance after 400 abrasion cycles and 20 tape-peeling tests and demonstrates superior stability under hygrothermal aging (85 °C/85% RH), showing only a 59% resistance increase compared with 228% for the pristine ACF. A self-assembled μ-LED array confirms reliable Z-axis conductivity with negligible XY-plane leakage. This intrinsic hydrophobic modification strategy herein overcomes the durability limitations of conventional coatings and commercial ACFs, offering a scalable, roll-to-roll compatible solution toward high-reliability electronic interconnections in demanding hygrothermal environments.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69d5f13674eaea4b11a7ab9fhttps://doi.org/10.1021/acsami.6c02272
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