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Branched-type nanocluster-junction fluorofluidic-gels for interface-adaptive thermal conduction and mechanical resistance

Weiming Tang, Hangsheng Zhou, Hanyu Wang, Xingyue Zhu, Lei Jiang, Ziguang Zhao, Shutao Wang

Peer-reviewed journalReal-world use

In the authors' words

With the miniaturization and high integration of microelectronic devices, efficient thermal management is increasingly critical. Conventional thermal interface materials often suffer from a certain degree of mismatch between their thermal conductivity and contact thermal resistance. Herein, we develop a thermal interface fluorofluidic-gel with a branched-type nanocluster-junction network. Benefiting from the interfacial infiltration enabled by the branched-junction fluoronetwork and the efficient thermal pathways constructed by thermal conductive nanocomposites, the fluorofluidic-gel exhibits a high thermal conductivity of 5.89 W·m⁻¹·K⁻¹ and a low contact thermal resistance of 0.15 cm²·K·W⁻¹. It also achieves reversible adhesion and mechanical resistance, with an adhesive strength of 189.3 kPa, adhesion energy of 220.3 J·m⁻² and impact resistance of 3.91 J·cm⁻¹. In addition, this gel maintains thermal stability from −80 °C to 300 °C and exhibits an electrical breakdown strength exceeding 24 kV/mm. We ‌anticipate‌ that adaptive thermal interface fluorofluidic-gel presents a promising solution for high-heat-flux electronic thermal management. ‘Conventional thermal interface materials often suffer from a certain degree of mismatch between their thermal conductivity and contact thermal resistance. Here the authors develop a thermal interface fluorofluidic-gel with a branched-type nanocluster-junction network exhibiting high thermal conductivity and low contact thermal resistance.

Main resultThe abstract does not state a limitation.

Appeared: Monday, September 28. Nature Communications. Peer-reviewed journal.

DOI: 10.1038/s41467-026-78046-2